Difference between revisions of "Science"

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[[File:KSP_Tech_Progression.gif|thumb|The first few stages of the Tech tree, showing the unlock system]]
+
{{for|the game mode|science mode}}
'''Science''', sometimes called '''science points''', is needed to unlock new [[parts]] in the [[tech tree]]. It is obtained by performing different scientific activities at different locations and then either returning to [[Kerbin]] and recovering the craft or sending your scientific analysis home through an [[antenna]].
+
{{for|the parts|parts#Science}}
 +
[[File:EVA report.png|thumb|upright=1|An image of the GUI after doing an EVA report]]
 +
'''Science''' is a gameplay feature used to unlock [[parts]] in the [[technology tree]] when playing in the [[Career]] or [[Science mode|Science]] modes by spending '''science points''', which are mainly obtained by performing various [[Science#Activities|scientific activities]] in different [[Science#Situations|situations]] and [[Science#Biomes|biomes]]. Science may also be obtained upon successful completion of certain [[contracts]], or gained through the implementation of [[strategies|administrative strategies]]. Science must either be recovered or transmitted in order to be used on Kerbin to unlock additional technologies. While transmission is generally not for 100% value, experiments may be repeated and retransmitted, often gaining more science value than the transmit window shows.  Experiments can be removed from the parts they were performed in and are stored with a Kerbal on [[EVA]]. Additionally, science experiments can be stored in and retrieved from any part that Kerbals can ride in, although only one copy of an experiment for any specific situation (e.g. EVA report flying over Kerbin's shores) can be stored per [[command pod]]. Science and all related instruments and buildings are made inoperative while in [[Sandbox]] mode due to its triviality—all parts are available from the start of a Sandbox game.
  
== Science activities ==
+
In addition to the facts collected on this page, you can follow this beginner-friendly [[Tutorial:Science|Science tutorial]].
  
This is an overview of all science activities which can be performed. Most activities are restricted to certain heights. Currently{{Check version||0.22}} the planet [[Kerbin]] and its moon [[Mun]] are divided into different biomes. On some heights, some experiments return different results per biome.
+
== Situations ==
 +
'''Situations''' reflect the flight status of the craft or [[kerbonaut]] relative to a celestial body. There are six possible situations, some of which may be irrelevant to a given science activity or unavailable on a given celestial body.
 +
* SrfLanded: in contact with the terrestrial surface
 +
* SrfSplashed: in a liquid body on the surface (such as oceans)
 +
* ''Flying Low'': above the surface at any height, if and only if an atmosphere is present
 +
* ''Flying High'': in the upper atmosphere, if and only if an atmosphere is present
 +
* In Space Low: above the surface at any height and not in an atmosphere
 +
* In Space High: high above the surface and any atmosphere but still in its [[Sphere of influence|SOI]]
  
 +
[[File:Lander on Duna.png|thumb|upright=1|A scientific lander on [[Duna]]]]
 +
 +
An atmosphere is required for the situations "''Flying Low''" and "''Flying High''" and for usage of the ''[[Atmospheric Fluid Spectro-Variometer]]''. As of KSP version 1.0.2, the ''[[PresMat Barometer]]'' can be used without an atmosphere. If soaring through an upper or lower atmosphere on a trajectory to an escape from the planet or moon's sphere of influence, the situation is assigned as "In Space Low" regardless of the presence of the atmosphere. The situation will only change to "Flying High" or "Flying Low" if/when the aerodynamic forces cause an orbit to be captured during the encounter.
 +
 +
== Biomes ==
 +
'''[[Biomes]]''' are areas of a body's surface specially mapped in KSP game data. Each additional biome grants a separate set of opportunities to do Science Activities, provided the Activity is biome-dependent in the given Situation. Each [[planet]] with solid surface and each [[moon]] has biomes, because of this several biomes have to be visited with [[lander]]s or [[rover]]s for total research of the given celestial body.
 +
 +
== Activities ==
 +
 +
This is an overview of all science activities which can be performed and how results differ by '''biome''' and '''situation'''. Activities performed within one [[sphere of influence]](SOI) have no effect on the Science Points that can be earned doing science activities within the SOI of any other [[celestial body]].
 +
 +
=== Possible combinations of Activity, Situation, and Biome ===
 +
The top row of the chart names each Activity; the left hand column shows the six possible Situations.
 +
 +
Each intersection shows whether the Activity is possible for a given Situation and, if so, whether it differs by '''Biome''' or gives one '''Global''' result for the entire celestial body.
 +
 +
Activities and situations requiring an atmosphere are <span style="background-color:#e9e9f9;">''italicized and colored''</span>. Surface: Splashed currently can only be accomplished on [[Kerbin]], [[Eve]], and [[Laythe]].
 
{| class="wikitable" style="text-align:center"
 
{| class="wikitable" style="text-align:center"
|+Possible activities in different locations
+
! scope="row" rowspan="2" |  
! rowspan="2" | Location
+
! colspan="5" | Kerbonaut
! rowspan="2" | Surface Samples
+
! scope="col" | Capsule
! rowspan="2" | EVA report
+
! colspan="9" | Modules
! rowspan="2" | Crew Report
 
! colspan="7" | Experiments
 
 
|-
 
|-
![[Mystery Goo Containment Unit]]
+
<!-- If there is an article about an experiment (not the part) which doesn't redirect here, that should be used. Otherwise use the internal link. -->
![[SC-9001 Science Jr.]]
+
! scope="col" | [[#Surface_Sample|Surface Sample]]
![[2HOT Thermometer]]
+
! scope="col" | [[#EVA_Report|EVA Report]]
![[PresMat Barometer]]
+
! scope="col" | [[#EVA_Experiments|EVA Experiments]]
![[GRAVMAX Negative Gravioli Detector]]
+
! scope="col" | [[#Asteroid Sample|Asteroid Sample]]
![[Double-C Seismic Accelerometer]]
+
! scope="col" | [[#Comet Sample|Comet Sample]]
![[Sensor Array Computing Nose Cone]]
+
! scope="col" | [[#Crew_Report|Crew Report]]
 +
! scope="col" | [[#Table_of_science_modules|Mystery Goo Observation]]
 +
! scope="col" | [[#Table_of_science_modules|Materials Study]]
 +
! scope="col" | [[#Table_of_science_modules|Temperature Scan]]
 +
! scope="col" | [[#Table_of_science_modules|Atmospheric Pressure Scan]]
 +
! scope="col" | [[#Table_of_science_modules|Gravity Scan]]
 +
! scope="col" | [[#Table_of_science_modules|Seismic Scan]]
 +
! scope="col" style="font-style:italic; background-color:#e9e9f9;" | [[#Table_of_science_modules|Atmosphere Analysis]]
 +
! scope="col" | [[#Table_of_science_modules|Infrared Telescope]]
 +
! scope="col" | [[#Table_of_science_modules|Magnetometer Boom]]
 +
|-
 +
! scope="row" style="text-align:right;" | Surface: Landed
 +
|Biome
 +
|Biome
 +
|Global
 +
|Biome
 +
|Biome
 +
|Biome
 +
|Biome
 +
|Biome
 +
|Biome
 +
|Biome
 +
|Biome
 +
|Biome
 +
|style="font-style:italic; background-color:#e9e9f9;" |Biome
 +
|—
 +
|—
 
|-
 
|-
! style="text-align:right;" | On the ground
+
! scope="row" style="text-align:right;" | Surface: Splashed
|[[Biome]]
+
|Biome
 
|Biome
 
|Biome
 +
|—
 
|Biome
 
|Biome
 
|Biome
 
|Biome
 
|Biome
 
|Biome
 
|Biome
 
|Biome
|Biome <br> <small>(if atmosphere exists)</small>
 
 
|Biome
 
|Biome
|Biome <br> <small>(except water biome)</small>
+
|Biome
|Biome <br> <small>(if atmosphere exists)</small>
+
|Biome
 +
|Biome
 +
|—
 +
|—
 +
|—
 +
|—
 
|-
 
|-
! style="text-align:right;" | Lower [[atmosphere]]
+
|-style="font-style:italic; background-color:#e9e9f9;"
 +
! scope="row" style="text-align:right;" | Flying Low
 
| —
 
| —
 +
|Biome
 +
|—
 +
|Biome
 
|Biome
 
|Biome
 
|Biome
 
|Biome
|Once
+
|Global
|Once
+
|Global
 
|Biome
 
|Biome
|Once
+
|Global
 
|—
 
|—
 
|—
 
|—
 
|Biome
 
|Biome
 +
|—
 +
|—
 
|-
 
|-
! style="text-align:right;" | Upper atmosphere
+
|-style="font-style:italic; background-color:#e9e9f9;"
 +
! scope="row" style="text-align:right;" | Flying High
 
| —
 
| —
|Once
+
|Global
|Once
+
|
|Once
+
|Global
|Once
+
|Global
|Once
+
|Global
|Once
+
|Global
 +
|Global
 +
|Global
 +
|Global
 
|—
 
|—
 
|—
 
|—
 
|Biome
 
|Biome
 +
|—
 +
|—
 
|-
 
|-
! style="text-align:right;" | Near space
+
! scope="row" style="text-align:right;" | In Space Low
 
|—
 
|—
 
|Biome
 
|Biome
|Once
+
|Global
|Once
+
|Global
|Once
+
|Global
|Once
+
|Global
 +
|Global
 +
|Global
 +
|Global
 +
|Global
 +
|Biome
 
|—
 
|—
|Biome
 
 
|—
 
|—
 
|—
 
|—
 +
|Global
 
|-
 
|-
! style="text-align:right;" | Outer space
+
! scope="row" style="text-align:right;" | In Space High
|—
 
|Once
 
|Once
 
|Once
 
|Once
 
|—
 
 
|—
 
|—
 +
|Global
 +
|Global
 +
|Global
 +
|Global
 +
|Global
 +
|Global
 +
|Global
 +
|Global
 +
|Global
 
|Biome
 
|Biome
 
|—
 
|—
 
|—
 
|—
 +
|Global
 +
|Global
 
|}
 
|}
  
=== Surface Samples ===
+
=== Crew ===
 +
The following Activities are performed by Kerbals during an EVA or from within a crewed command module.
 +
 
 +
==== Surface Sample ====
  
 
{| class="wikitable"
 
{| class="wikitable"
 
|-
 
|-
 
! Requires
 
! Requires
| any command pod, one Kerbal
+
| One kerbonaut
 +
|-
 +
! Data size
 +
| 30 Mits
 
|-
 
|-
 
! Base value
 
! Base value
Line 100: Line 183:
 
|-
 
|-
 
! Transmission efficiency
 
! Transmission efficiency
| 50%
+
| 25%
 +
|-
 +
! Processing energy
 +
| 300&nbsp;{{mark|echu}}
 
|}
 
|}
  
Surface samples can be taken by Kerbonauts when performing an EVA on the ground (or in the oceans) of a celestial body. The results vary by biome.
+
'''Surface Samples''' can be taken by kerbonauts when performing an EVA on the ground (or from on top of a landed or splashed craft) or in water of a celestial body. The results vary by biome and situation (landed or splashed) just as with craft. However, there is one detail to note: a Kerbal swimming in the water is splashed, but a Kerbal standing on top of a ''splashed'' craft is '''landed'''. So two different surface samples can be collected from any floating craft.
 +
 
 +
In [[Career]] mode, Surface Samples cannot be taken without having the [[Research and Development]] Facility and [[Astronaut Complex]] upgraded to second level.
  
=== EVA Reports ===
+
==== EVA Report ====
  
 
{| class="wikitable"
 
{| class="wikitable"
 
|-
 
|-
 
! Requires
 
! Requires
| any command pod, one Kerbal
+
| One kerbonaut
 +
|-
 +
! Data size
 +
| 8 Mits
 
|-
 
|-
 
! Base value
 
! Base value
Line 116: Line 207:
 
|-
 
|-
 
! Maximum value
 
! Maximum value
| 10
+
| 8
 +
|-
 +
! Data scale
 +
| 1
 +
|-
 +
! Transmission efficiency
 +
| 100%
 +
|-
 +
! Processing energy
 +
| 80&nbsp;{{mark|echu}}
 +
|}
 +
 
 +
'''EVA Reports''' are performed by kerbonauts on an [[EVA]]. The results vary by biome and situation (landed, splashed, or "flying"). There is one detail to note: a Kerbal swimming in the water is splashed, but a Kerbal standing on top of a ''splashed'' craft is '''landed''' — up to three different EVA reports can be collected from any floating craft. The easiest ways to take a Flying Low report are to jump from the surface or hang onto a ladder.
 +
 
 +
Only one EVA Report per biome/situation combination is necessary. A kerbonaut can only take and hold one EVA Report at a time without storing it in a Command Pod, though reports retrieved from a Command Pod have no limitations on how many of a type can be carried.
 +
 
 +
==== EVA Experiments ====
 +
 
 +
{| class="wikitable"
 +
|-
 +
! Requires
 +
| One kerbonaut
 +
|-
 +
! Data size
 +
| 25 Mits
 +
|-
 +
! Base value
 +
| 25
 +
|-
 +
! Maximum value
 +
| 25
 
|-
 
|-
 
! Data scale
 
! Data scale
Line 122: Line 243:
 
|-
 
|-
 
! Transmission efficiency
 
! Transmission efficiency
| 50%
+
| 100%
 +
|-
 +
! Processing energy
 +
| 250&nbsp;{{mark|echu}}
 
|}
 
|}
  
EVA reports are done by Kerbonauts on an [[EVA]]. Like crew reports they give different results depending on altitude and biome if performed low enough.
+
'''EVA Experiments''' are performed by kerbonauts on an [[EVA]], using the [[EVA Experiments Kit]]. The kerbonaut may not hold on to a ladder when doing the experiment. This type of science was added in version 1.11.
  
In contrast to crew reports and experiments, a Kerbonaut can memorize a different report for each condition he performed an EVA in during the mission.
+
==== Asteroid Sample ====
  
=== Crew Reports ===
+
{| class="wikitable"
 +
|-
 +
! Requires
 +
|
 +
* One kerbonaut
 +
* One [[Asteroid]]
 +
|-
 +
! Data size
 +
| 60 Mits
 +
|-
 +
! Base value
 +
| 60
 +
|-
 +
! Maximum value
 +
| 70
 +
|-
 +
! Data scale
 +
| 1
 +
|-
 +
! Transmission efficiency
 +
| 30%
 +
|-
 +
! Processing energy
 +
| 600&nbsp;{{mark|echu}}
 +
|}
 +
 
 +
'''Asteroid Samples''' can be taken by kerbonauts when performing an EVA close to an asteroid. The samples give various results depending on the altitude of the orbiting planet.
 +
 
 +
==== Comet Sample ====
  
 
{| class="wikitable"
 
{| class="wikitable"
 
|-
 
|-
 
! Requires
 
! Requires
| any command pod
+
| colspan="4" |
 +
* One kerbonaut
 +
* One [[Comet]]
 +
|-
 +
!Period
 +
|Short
 +
|Intermediate
 +
|Long
 +
|Interstellar
 +
|-
 +
! Data size
 +
| 90 Mits
 +
| 135 Mits
 +
| 270 Mits
 +
| 900 Mits
 +
|-
 +
! Base value
 +
| 90
 +
| 135
 +
| 270
 +
| 900
 +
|-
 +
! Maximum value
 +
| 100
 +
| 150
 +
| 300
 +
| 1000
 +
|-
 +
! Data scale
 +
| 1
 +
| 1
 +
| 1
 +
| 1
 +
|-
 +
! Transmission efficiency
 +
| 60%
 +
| 60%
 +
| 60%
 +
| 60%
 +
|-
 +
! Processing energy
 +
| 900&nbsp;{{mark|echu}}
 +
| 1350&nbsp;{{mark|echu}}
 +
| 2700&nbsp;{{mark|echu}}
 +
| 9000&nbsp;{{mark|echu}}
 +
|}
 +
 
 +
'''Comet Samples''' can be taken by kerbonauts when performing an EVA close to a comet. The samples give various results depending on the altitude of orbit and situation. The science produced depends on the period of the comet.
 +
 
 +
==== Crew Report ====
 +
 
 +
{| class="wikitable"
 +
|-
 +
! Requires
 +
| A manned command pod
 +
|-
 +
! Data size
 +
| 5 Mits
 
|-
 
|-
 
! Base value
 
! Base value
Line 140: Line 349:
 
|-
 
|-
 
! Maximum value
 
! Maximum value
| 8
+
| 5
 
|-
 
|-
 
! Data scale
 
! Data scale
Line 147: Line 356:
 
! Transmission efficiency
 
! Transmission efficiency
 
| 100%
 
| 100%
 +
|-
 +
! Processing energy
 +
| 50&nbsp;{{mark|echu}}
 
|}
 
|}
  
Crew reports can be created in every manned [[command pod]]. Each command pod can only store one report at a time ([[Kerbonaut]]s seem to be unable to memorize more than one at a time), but they can be sent home with an [[antenna]] without penalty allowing the crew to create a new one.
+
'''Crew Reports''' can be created in any manned [[command pod]]. Reports uniquely differ between [[celestial body]] and [[Science#Situations|situation]]. Because the transmission efficiency is 100%, repeating them or transmitting them multiple times yields no additional Science.
 +
 
 +
If a command pod has taken a Crew Report but not transmitted it, it cannot take a new report even when in a new situation, biome, or sphere of influence. This limitation can be circumvented by having a kerbonaut on EVA "take data" from the command pod. Even if they store the data in the same command pod it was taken from, the Crew Report will be treated as just another piece of data to store. A second Crew Report can be taken even in exactly the same spot; no additional points are yielded by duplicate Crew Reports though.
  
Crew reports differ between current [[celestial body]], altitude, and at low altitudes also between different [[biome]]s.
+
=== Modules ===
  
=== Experiments ===
+
Experiments done by separate parts like the [[Mystery Goo™ Containment Unit]] behave similarly to Crew Reports. They may be performed in different flight phases and on different celestial bodies returning different results. Each module can only store one result at a time, but a result can be sent home with an [[antenna]] to allow the experiment to be performed again under the same or under new conditions. Data can also be extracted from the module by a kerbonaut during an EVA. There is a penalty for transmitting data home instead of recovering the module to Kerbin.
  
Experiments are [[parts]] like the [[Mystery Goo Containment Unit]] and behave similar to crew reports. They can be performed in different flight phases and on different celestial bodies returning different results. The biome, however, does not affect them unless the vessel has landed. Just like crew reports, each experiment part can only store one result at a time, but a result can be sent home with an [[antenna]] to allow the experiment to be performed again under the same or under new conditions. There is a penalty for sending it home instead of recovering the performed experiment, but when the craft has a steady supply of [[electricity]] to supply its antenna this doesn't matter much because an experiment can be repeated indefinitely resulting in the same science output as would be possible through recovery.
+
Since {{version|0.23}}, transmitting or collecting data renders the Mystery Goo™ Containment Unit and SC-9001 Science Jr. disabled for the remainder of a flight. If the craft has (or can be docked with) a fully crewed [[lab]], it can reset those modules at a cost of time and electric charge.  Since {{version|1.0}}, these modules can also be reset by a scientist on EVA, allowing a craft with a scientist on board to collect multiple results (from different situations and biomes) on a single mission, without needing a full lab as part of the craft.  The results collected and stored during a mission can be transferred to a lab at the end of the mission (or taken back to Kerbin).
  
 +
==== Table of science modules ====
 
{| class="wikitable"
 
{| class="wikitable"
 
|-
 
|-
 
! Experiment
 
! Experiment
 
| Mystery Goo Observation
 
| Mystery Goo Observation
| Materials Study
 
 
| Temperature Scan
 
| Temperature Scan
 
| Atmospheric Pressure Scan
 
| Atmospheric Pressure Scan
 +
| Materials Study
 
| Seismic Scan
 
| Seismic Scan
 +
| Atmosphere Analysis
 +
| Infrared Telescope
 +
| Magnetometer Report
 
| Gravity Scan
 
| Gravity Scan
| Atmosphere Analysis
 
 
|-
 
|-
! Required part
+
! Required part (tech tree lvl)
| Mystery Goo Containment Unit
+
| [[Mystery Goo™ Containment Unit]] (1)
| SC-9001 Science Jr.
+
| [[2HOT Thermometer]] (2)
| 2HOT Thermometer
+
| [[PresMat Barometer]] (3)
| PresMat Barometer
+
| [[SC-9001 Science Jr.]] (4)
| Double-C Seismic Accelerometer
+
| [[Double-C Seismic Accelerometer]] (7)
| GRAVMAX Negative Gravioli Detector
+
| [[Atmospheric Fluid Spectro-Variometer]] (7)
| Avionics Package
+
| [[SENTINEL Infrared Telescope]] (7)
 +
| [[Magnetometer Boom]] (7)
 +
| [[GRAVMAX Negative Gravioli Detector]] (8)
 +
|-
 +
! Data size
 +
| 10 Mits
 +
| 8 Mits
 +
| 12 Mits
 +
| 25 Mits
 +
| 50 Mits
 +
| 200 Mits
 +
| 30 Mits
 +
| 45 Mits
 +
| 60 Mits
 
|-
 
|-
 
! Base value
 
! Base value
 
| 10
 
| 10
| 25
 
 
| 8
 
| 8
 
| 12
 
| 12
 +
| 25
 
| 20
 
| 20
 
| 20
 
| 20
 +
| 15
 +
| 45
 
| 20
 
| 20
 
|-
 
|-
 
! Maximum value
 
! Maximum value
| 18
+
| 13
| 35
+
| 8
| 10
+
| 12
| 14
+
| 32
| 23
 
 
| 22
 
| 22
 
| 24
 
| 24
 +
| 22
 +
| 45
 +
| 22
 
|-
 
|-
 
! Data scale
 
! Data scale
Line 201: Line 435:
 
| 1
 
| 1
 
| 2.5
 
| 2.5
 +
| 10
 +
| 2
 +
| 1
 
| 3
 
| 3
| 10
 
 
|-
 
|-
 
! Transmission efficiency
 
! Transmission efficiency
 +
| 30%
 +
| 50%
 +
| 50%
 +
| 35%
 +
| 45%
 +
| 60%
 
| 40%
 
| 40%
| 20%
 
 
| 60%
 
| 60%
| 60%
+
| 40%
| 60%
+
|-
| 60%
+
! Processing energy ({{mark|echu}})
| 90%
+
| 100
 +
| 80
 +
| 120
 +
| 250
 +
| 500
 +
| 2000
 +
| 300
 +
| 450
 +
| 600
 
|}
 
|}
  
== Craft recovery ==
+
The transmission efficiency caps the maximum returnable science with the experiment via antennae. To gather all scientific value experiments needs to be recovered. With the release of 1.0, transmission efficiency drops radically on experiments that have already been performed and transmitted. If an experiment is recovered, transmission efficiency for that experiment drops to zero (situation and biome specific).
  
Recovering a craft after it landed on Kerbin also yields science points by itself. Its value depends on how far the craft flew. Recovering a craft after a suborbital flight returns less valuable (but different) results than one which orbited the [[Mun]], for example.  The returned value appears to be 5 * (surfaces visited + bodies orbited).
+
==== Recovering the maximum value of an experiment ====
 +
Experiments that have a maximum value different from the minimum value will only give a certain percentage of its remaining value, this percentage can be calculated using the formula: Minimum value/ Maximum value.
 +
Consequently, these experiments can be repeated to get more fractions of the remaining points. An effective way to do this is by recovering multiple copies of an experiment. This can easily be accomplished by storing the experiments inside multiple [[Experiment_Storage_Unit|Experiment Storage Units]] and then recovering it.
  
== Celestial body multipliers ==
+
===== Repeated experiment value =====
{{Stub|table|It is missing almost all altitudes where the upper atmosphere (if applicable) and outer space starts.}}
+
 
{| class="wikitable sortable"
+
{| class="wikitable"
 
|-
 
|-
! Celestial body
+
! Experiment
! On the surface
+
| Mystery Goo Observation
! Atmosphere
+
| Temperature Scan
! Altitude
+
| Atmospheric Pressure Scan
! Space
+
| Materials Study
! Altitude
+
| Seismic Scan
 +
| Atmosphere Analysis
 +
| Infrared Telescope
 +
| Magnetometer Report
 +
| Gravity Scan
 +
|- style="vertical-align:top;"
 +
! Percentage
 +
| 1 → 77% <br>2 → 95%<br>3 → 99%<br>4 → 100%
 +
| 1 → 100%
 +
| 1 → 100%
 +
| 1 → 78%<br>2 → 95%<br>3 → 99%<br>4 → 100%
 +
| 1 → 91%<br>2 → 99%
 +
| 1 → 83%<br>2 → 97%<br>3 → 100%
 +
| 1 → 68%<br>2 → 90%<br>3 → 97%<br>4 → 99%
 +
| 1 → 100%
 +
| 1 → 91%<br>2 → 99%
 +
|}
 +
 
 +
You will need at most 4 copies (experiments with higher percentages need less) of an experiment to get close enough to 100% for it to be noticeable in the Archives section.
 +
 
 +
Take Mystery Goo for example. With base value of 10 and maximum value of 13, each consecutive experiment will yield 10/13 ≈ 77% of the remaining value.
 +
That results in the following numbers - assuming a [[#Celestial_body_multipliers|location multiplier]] of 1×, such as <abbr title="Low Kerbin Orbit">LKO</abbr>.
 +
 
 +
{| class="wikitable" style="text-align:right;"
 
|-
 
|-
! Sun
+
! Repetition
| N/A
+
! colspan="2" | Experiment value
| colspan="2" | N/A
+
! colspan="2" | Cumulative value
| 11
 
| ?
 
 
|-
 
|-
! Moho
+
! #1
| 9
+
| 76.92%
| colspan="2" | N/A
+
| 10.0⚛
| 8
+
|
| ?
+
|
 
|-
 
|-
! Eve
+
! #2
| 12
+
| 17.75%
| 7
+
| 2.3⚛
| ?
+
| 94.67%
| 7
+
| 12.3⚛
| ?
 
 
|-
 
|-
! Gilly
+
! #3
| 9
+
| 4.10%
| colspan="2" | N/A
+
| 0.5⚛
| 8
+
| 98.77%
| ?
+
| 12.8⚛
 
|-
 
|-
! Kerbin
+
! #4
| 0.4
+
| style="text-align:right;" | 0.95%
| 0.7
+
| 0.1⚛
| ?
+
| 99.72%
| 1
+
| 13.0⚛
| 250&nbsp;km
+
|}
 +
 
 +
Note: in the Archives section it is shown how many science points have been obtained from an experiment - right-most column, labelled "Science" - with two decimal digits (0.01) precision.
 +
In order to max out this value, the worst case is the Infrared Telescope in Low Orbit around Eeloo: you will need 10 copies of the experiment!
 +
 
 +
=== Craft recovery ===
 +
 
 +
{| class="wikitable" style="text-align:center"
 
|-
 
|-
! Mun
+
! colspan="2" width=20% | Celestial Body
| 4
+
! width=10% | Flyby
| colspan="2" | N/A
+
! width=15% | Orbital Flight
| 3
+
! width=15% | Suborbital Flight
| 60&nbsp;km
+
! width=15% | Atmospheric Flight
 +
! width=15% | Surface Landed
 
|-
 
|-
! Minmus
+
! rowspan="2" | Kerbin
 +
! Base Value
 +
| N/A
 +
| 10
 +
| 8
 
| 5
 
| 5
| colspan="2" | N/A
+
| N/A
| 4
 
| 30&nbsp;km
 
 
|-
 
|-
! Duna
+
! Max Value
| 8
+
| N/A
| 7
+
| 12
| N/A<ref group="note" name="only-lower">The celestial body does have only a lower atmosphere. It is not possible to do experiments in the upper atmosphere.</ref>
+
| 9.6
| 7
+
| 6
| ?
+
| N/A
|-
 
! Ike
 
| 9
 
| colspan="2" | N/A
 
| 8
 
| ?
 
 
|-
 
|-
! Dres
+
! rowspan="2" | Other
 +
! Base Value
 +
| 6
 
| 8
 
| 8
| colspan="2" | N/A
 
| 7
 
| ?
 
|-
 
! Jool
 
| N/A
 
| 7
 
| ?
 
| 7
 
| ?
 
|-
 
! Laythe
 
 
| 10
 
| 10
| 9
+
| 12
| ?
+
| 15
| 9
 
| ?
 
 
|-
 
|-
! Vall
+
! Max Value
| 10
+
| 7.2
| colspan="2" | N/A
+
| 9.6
| 9
+
| 12
| ?
+
| 14.4
 +
| 18
 
|-
 
|-
! Tylo
+
| colspan="7" | The Base- and Max Value of celestial bodies other than Kerbin have to be multiplied by their body-specific recovery multiplier listed below.
| 11
+
|}
| colspan="2" | N/A
+
Recovering any craft with a [[command module]] after flight will yield science points based on the most scientifically valuable phase (based on Max Value*Celestial body multiplier) of the journey. As seen in the table the value of each phase increases the closer a spacecraft has been to orbit. The opposite is true for other [[celestial_body|celestial bodies]]. In order to earn recovery science from atmospheric flight, the craft cannot reach a suborbital trajectory, as this would become marked as the most valuable phase of the flight. This is even the case when many suborbital flights have been performed before it, and science returns would be effectively higher from a craft that only experienced flight. The different phases are defined as follows:
| 10
+
* Flyby: Only the [[periapsis]] is  within the [[SOI]].
| ?
+
* Orbit: The periapsis and apoapsis are within the SOI and the orbit does not intersect the surface.
 +
* Suborbit: The ship is above and the periapsis is inside the atmosphere or the surface.
 +
* Flight: The body is within the [[atmosphere]].
 +
* Landed: The craft is touching the surface of the body.
 +
* Splashed down: The ship is touching water without touching the ground. It cannot touch the ground because, for example, it is possible to be Landed on Kerbin's water if you get a ship to sink to the ocean floor.
 +
 
 +
 
 +
To receive science closer to the maximum science value in one trip, it is possible to have multiple command modules on a craft which can separate when landed so "multiple craft" can be recovered. Decouplers or separators can be used for this, when using light probe cores ejection force should be reduced as to avoid high velocity [[Aerobraking#Lithobraking|lithobraking]].
 +
 
 +
== Celestial body multipliers ==
 +
Each celestial body has different multipliers applied to the collected scientific data, based upon where it is taken in relation to that body. Biomes do not affect these multipliers.
 +
 
 +
The altitudes given in this table determine the altitude above mean sea level of the boundary between lower and upper atmosphere and between near and outer space. The upper atmosphere extends to the atmospheric height and the outer space extends up to the end of the sphere of influence.
 +
 
 +
{| class="wikitable sortable"
 +
|- <!-- sort doesn't work with rowspan -->
 +
!
 +
! colspan="2" | Surface
 +
! colspan="4" | Atmosphere
 +
! colspan="3" | Space
 +
!
 +
! colspan="2" | Total
 
|-
 
|-
! Bop
+
! Celestial body
| 9
+
! Landed
| colspan="2" | N/A
+
! Splashed
| 8
+
! Low
| ?
+
! High
|-
+
! Border
! Pol
+
! Limit
| 9
+
! Low
| colspan="2" | N/A
+
! High
| 8
+
! Border
| ?
+
! Recovery
|-
+
! Total Science
! Eeloo
+
! Total Data
| 9
+
{{:Science/Row|Kerbol}}
| colspan="2" | N/A
+
{{:Science/Row|Moho}}
| 8
+
{{:Science/Row|Eve}}
| ?
+
{{:Science/Row|Gilly}}
 +
{{:Science/Row|Kerbin}}
 +
{{:Science/Row|Mun}}
 +
{{:Science/Row|Minmus}}
 +
{{:Science/Row|Duna}}
 +
{{:Science/Row|Ike}}
 +
{{:Science/Row|Dres}}
 +
{{:Science/Row|Jool}}
 +
{{:Science/Row|Laythe}}
 +
{{:Science/Row|Vall}}
 +
{{:Science/Row|Tylo}}
 +
{{:Science/Row|Bop}}
 +
{{:Science/Row|Pol}}
 +
{{:Science/Row|Eeloo}}
 
|}
 
|}
<references group="note" />
 
  
Each celestial body has different multipliers applied to the collected scientific data, based upon where it is taken in relation to that body. Biomes do not affect these multipliers. The only exception is Kerbin on the surface for the [[KSC]], [[runway]], and [[launch pad]] where the multiplier is 0.3 instead of 0.4.
+
== Contracts ==
  
The altitudes given in this table determine the altitude above mean sea level of the boundary between lower and upper atmosphere and between near and outer space. The upper atmosphere extends to the atmospheric height and the outer space extends up to the end of the sphere of influence.
+
As of [[0.24]], players can access various [[contracts]] at [[Mission Control]] while playing in [[career mode]]. The rewards for accomplishing contracts vary and can include a significant amount of Science.
  
== Repeating experiments ==
+
== Acquisition Strategies ==
Performing the same activity multiple times in the same environment yields additional science points, but with diminishing returns each time the activity is repeated.
 
  
Each activity will provide a certain amount of science points, and the subsequent amount will be decreased whenever some science points are already obtained (either through recovery or transmission). This decrease depends on the amount of received points, which means it makes no difference whether a player recovers or transmits data: the maximum amount of science which can be obtained is always a constant.
+
The most efficient way to gather all science on a planet or moon from orbit is to enter a polar orbit at or near 90 degrees inclination, set the periapsis to the lowest point that will not impact the surface or the atmosphere and adjust the semi-major axis to twice the sum of the radius of the orbited body and the margin between high and low orbit.  This will cause the craft to be at various times both high and low over every biome on the body, eventually gathering all science that can be gathered from orbit. For example, with the Mun this means a polar orbit of 90 degrees, with a periapsis of 20 Km and an apoapsis of 620 Km.  Both the periapsis and apoapsis should be exactly at the equator for best results.
  
==Science calculations==
+
== Administrative Strategies ==
  
There are several forms of equations relating the yield to the number of times the experiment has performed depending of the desired result.
+
The various [[strategies]] that can be implemented at the [[Administration Facility]] while playing in [[career mode]] also have a significant effect on science income. Each strategy is based on trading one "resource" ([[reputation]], [[funds]], or science) for another as each is earned. Thus, at the cost of reputation or funds, the player can boost their science income. Conversely, the player can spend science to boost one of the other two resources. For example, the strategy "Outsourced R&D" yields science at the cost of funds, while "Open-Source Tech Program" will take a fraction of the player's science every time it is earned and convert it to reputation. Anywhere from 5% to 100% of the income from any of the resources can be converted into one of the others.
  
=== Step form ===
+
== Science Archives ==
This form calculates the yield of each run (i.e the increase of science). Its advantages are
 
* being the most straightforward, because the equation that was coded into the save-file is in step form
 
* easier to calculate the yield of each run than the total form (see below)
 
* still works when both transmission and recovery are performed
 
The equation is as follows:
 
  
{{Formula|math=\begin{align}
+
[[File:Science archive.jpg|thumb|right|The Science Archive]]
  y &= S \cdot M \cdot T \left(1-\frac{p}{C \cdot M}\right)=S \cdot T \left(M-\frac{p}{C}\right) \\
+
A filterable list of the experiments which have been performed so far can be accessed through the “Science Archive” tab in the Research and Development window.  
    &= S \cdot M \cdot T \left(1-\frac{S \cdot T}{C}\right)^n
 
\end{align}|where=* <math>y</math> is the yield obtained at that run
 
* <math>S</math> is the science.  Listed as the base value in tables above, it is a constant based on the type of experiment.
 
* <math>C</math> is the science cap. Listed as the maximum value in tables above, it is a constant based on the type of experiment.
 
* <math>T</math> is the transmission efficiency, which is 1 for recovering the vehicle on Kerbin.
 
* <math>M</math> is the science modifier based on the situation (see the celestial body multiplier table).
 
* <math>p</math> is the sum of previous science gained from this experiment in this situation, and
 
* <math>n</math> is the number of times the experiment has been performed in the past (<math>n=0</math> for the first run of the experiment).}}
 
  
=== Total form ===
+
The entries show what data have been brought back and whether more data from repeating activities can be gathered. If the bar below an experiment is not completely full, as shown in some of the examples on the right, the experiment can be repeated to gain additional science. This is also useful to see what biomes and situations haven't been covered yet and provide the richest opportunities.
This form calculate the total yield for a number of runs. It is best suited for
 
* calculating the total yield for doing a lot of runs, or
 
* the amount of runs needed to achieve certain amount of science
 
, because the calculation is always done only ''once'', in contrary to the step form.
 
  
==== Reduced total form ====
+
== Breaking ground science experiments ==
For experiments that have not been performed before, the total yield equation is as follows:
+
{{Expansion|bg|small=no}}
{{Formula|math=p(t) = C \cdot M \cdot \left(1-\left(1 - \frac{S \cdot T}{C}\right)^t\right)|where=* <math>p(t)</math> is the total science obtained from the start (which is identical to the definition above),
+
The Breaking ground expansion bring two new types of science experiments: a standard ground experiment and deployable science modules. Both types are global per celestial body, depend on the body science multiplier and can only be done landed.
* <math>S</math>, <math>C</math>, <math>T</math> and <math>M</math> is same as above, and
 
* <math>t</math> is the amount of times the experiment is going to be performed (compare <math>n</math>, the amount of times the experiment ''has been performed'').}}
 
As can be seen in the total form, there is a asymptotic limit on the science on can get - it approaches <math>C \cdot M</math> as one repeats the experiment, which is the maximum amount of science one can possibly get '''in a game'''.
 
  
====Total form====
+
=== Robotic arm scan ===
If the experiment had been performed for some runs before, then the equation is as follows:
+
There are 3 types of [[OP-E_Large_Scanning_Arm|robotic arms]] which collect respectively 1/3, 2/3 and the whole experiment. The arm must be close to a [[Surface_features|surface feature]] in order to work. After that, the result can either be transmitted or grabed by a kerbal on EVA like any other experiment. It is better advised to use a rover with the robotic arm because proximity with a surface feature is important and cannot be corrected with a static landed ship.
{{Formula|math=\begin{align}
 
  P(t) &= p(n+t) - p(n) \\
 
      &= C \cdot M \cdot \left(1 - \frac{S \cdot T}{C}\right)^n \cdot \left(1-\left(1 - \frac{S \cdot T}{C}\right)^t\right) \\
 
      &= \left(1 - \frac{S \cdot T}{C}\right)^n \cdot p(t)
 
\end{align}|where= *<math>P(t)</math> is the total yield, and every symbol is the same as above.}}
 
  
Note that this equation reduces into the step form when <math>t=1</math>, or the reduced total form when <math>n = 0</math>, since <math>P(0) = 0</math>.
+
2 to 3 tiers of surface features are available on each body. The first tier can also be picked up by a kerbal as stones for example.
  
===Ratio form===
+
{| class="wikitable"
If one only cares about the percentage <math>R%</math> of the remaining science that will be extracted, a very simple form can be used, as follows:
+
|-
{{Formula|math=R(t) = \left(1-\left(1 - \frac{S \cdot T}{C}\right)^t \right) \cdot 100%|where=* <math>R(t)</math> is the percentage of the science one will extract, and
+
! Experiment
* every symbol is the same as above.}}
+
! Tier 1
 +
! Tier 2
 +
! Tier 3
 +
|-
 +
!Data size
 +
|30 Mits
 +
|45 Mits
 +
|60 Mits
 +
|-
 +
!Base value
 +
|30
 +
|45
 +
|60
 +
|-
 +
!Maximum value
 +
|30
 +
|45
 +
|60
 +
|-
 +
!Data scale
 +
|1
 +
|1
 +
|1
 +
|-
 +
!Transmission efficiency
 +
|100%
 +
|100%
 +
|100%
 +
|}
  
=== Inverse form ===
+
=== Deployable science ===
The inverse functions, calculating <math>t</math> for a specific <math>p(t)</math>, <math>P(t)</math> or <math>R(t)</math> also exist, by taking log on both sides.
+
Deployable science modules are a completely new type of science experiments consisting in letting modules on a foreign body and receiving science points every hour without any kerbal or probe intervention.
Note that '''step form''' does not have any inverse, as it should be.
+
 
The inverse forms are useful for determining the amount of times <math>t</math> a experiment need to be performed to get a target science.
+
A deployable science module must be set with other modules
For all functions every symbol is the same as in the original function. The logarithmic function <math>log</math> can be performed at '''any base''', provided that both bases are equal (and is a valid base).
+
* A deployable power source such as a deployable [[OX-Stat-PD_Photovoltaic_Panel|solar panel]] or [[Mini-NUK-PD_Radioisotope_Thermoelectric_Generator|RTG generator]]
 +
* A [[Probodobodyne_Experiment_Control_Station|powered command unit]]
 +
* (optional) a [[Communotron_Ground_HG-48|deployable powered 10G antenna]], or any probe with a relay capable antenna
 +
 
 +
All science modules must be set by a scientist for faster science points collection.
  
 
{| class="wikitable"
 
{| class="wikitable"
! Inverse reduced total form
 
! Inverse total form
 
! Inverse ration form
 
 
|-
 
|-
|<math>t = \frac{log \left(1 - \frac{p(t)}{C \cdot M}\right) }{log \left(1 - \frac{S \cdot T}{C}\right)}</math>
+
!Experiment
|<math>t = \frac{log\left(\left(1 - \frac{S \cdot T}{C}\right)^n - \frac{P(t)}{C \cdot M}\right)}{log \left(1 - \frac{S \cdot T}{C}\right)} - n</math>
+
![[Grand_Slam_Passive_Seismometer|Grand Slam Passive Seismometer]]
|<math>t = \frac{log \left(1 - R(t) \right)}{log \left(1 - \frac{S \cdot T}{C}\right)}</math>
+
![[Go-ob_ED_Monitor|Go-ob ED Monitor]]
 +
![[Ionographer_PD-22|Ionographer PD-22]]
 +
![[PD-3_Weather_Analyzer|PD-3 Weather Analyzer]]
 +
|-
 +
!Environment
 +
|Everywhere
 +
|Everywhere
 +
|Vacuum
 +
|Atmospheric
 +
|-
 +
!Base multiplier
 +
|1
 +
|0.28125
 +
|0.3125
 +
|0.3
 +
|-
 +
!Maximum value
 +
|80
 +
|45
 +
|100
 +
|60
 +
|}
 +
 
 +
The base multiplier is used to calculate the science per hour (or ratio for the seismometer). The formula is: base multiplier · kerbal level multiplier · body surface science multiplier
 +
 
 +
The table for the kerbal multiplier value is the following:
 +
{| class="wikitable"
 +
|-
 +
!Level
 +
!Value
 +
|-
 +
|Not scientist
 +
|0.05
 +
|-
 +
|Level 0
 +
|0.25
 +
|-
 +
|Level 1
 +
|0.35
 +
|-
 +
|Level 2
 +
|0.45
 +
|-
 +
|Level 3
 +
|0.60
 +
|-
 +
|Level 4
 +
|0.80
 +
|-
 +
|Level 5
 +
|1.00
 
|}
 
|}
  
==Known Bugs==
+
For example a level 3 scientist deploying an ionographer experiment on Mun gives 0.3125 · 0.60 · 4 = 0.75 science points per hour
  
* The Seismic Scan, Gravity Scan and Atmosphere Analysis experiments show more science value in the report window than is retrieved upon recovery or transmission ([http://bugs.kerbalspaceprogram.com/issues/1578 issue 1578]).
+
[[Category:Career-specific features]]
 +
[[Category:Science| ]]

Latest revision as of 21:17, 16 January 2024

For the game mode, see science mode.
For the parts, see parts#Science.
An image of the GUI after doing an EVA report

Science is a gameplay feature used to unlock parts in the technology tree when playing in the Career or Science modes by spending science points, which are mainly obtained by performing various scientific activities in different situations and biomes. Science may also be obtained upon successful completion of certain contracts, or gained through the implementation of administrative strategies. Science must either be recovered or transmitted in order to be used on Kerbin to unlock additional technologies. While transmission is generally not for 100% value, experiments may be repeated and retransmitted, often gaining more science value than the transmit window shows. Experiments can be removed from the parts they were performed in and are stored with a Kerbal on EVA. Additionally, science experiments can be stored in and retrieved from any part that Kerbals can ride in, although only one copy of an experiment for any specific situation (e.g. EVA report flying over Kerbin's shores) can be stored per command pod. Science and all related instruments and buildings are made inoperative while in Sandbox mode due to its triviality—all parts are available from the start of a Sandbox game.

In addition to the facts collected on this page, you can follow this beginner-friendly Science tutorial.

Situations

Situations reflect the flight status of the craft or kerbonaut relative to a celestial body. There are six possible situations, some of which may be irrelevant to a given science activity or unavailable on a given celestial body.

  • SrfLanded: in contact with the terrestrial surface
  • SrfSplashed: in a liquid body on the surface (such as oceans)
  • Flying Low: above the surface at any height, if and only if an atmosphere is present
  • Flying High: in the upper atmosphere, if and only if an atmosphere is present
  • In Space Low: above the surface at any height and not in an atmosphere
  • In Space High: high above the surface and any atmosphere but still in its SOI
A scientific lander on Duna

An atmosphere is required for the situations "Flying Low" and "Flying High" and for usage of the Atmospheric Fluid Spectro-Variometer. As of KSP version 1.0.2, the PresMat Barometer can be used without an atmosphere. If soaring through an upper or lower atmosphere on a trajectory to an escape from the planet or moon's sphere of influence, the situation is assigned as "In Space Low" regardless of the presence of the atmosphere. The situation will only change to "Flying High" or "Flying Low" if/when the aerodynamic forces cause an orbit to be captured during the encounter.

Biomes

Biomes are areas of a body's surface specially mapped in KSP game data. Each additional biome grants a separate set of opportunities to do Science Activities, provided the Activity is biome-dependent in the given Situation. Each planet with solid surface and each moon has biomes, because of this several biomes have to be visited with landers or rovers for total research of the given celestial body.

Activities

This is an overview of all science activities which can be performed and how results differ by biome and situation. Activities performed within one sphere of influence(SOI) have no effect on the Science Points that can be earned doing science activities within the SOI of any other celestial body.

Possible combinations of Activity, Situation, and Biome

The top row of the chart names each Activity; the left hand column shows the six possible Situations.

Each intersection shows whether the Activity is possible for a given Situation and, if so, whether it differs by Biome or gives one Global result for the entire celestial body.

Activities and situations requiring an atmosphere are italicized and colored. Surface: Splashed currently can only be accomplished on Kerbin, Eve, and Laythe.

Kerbonaut Capsule Modules
Surface Sample EVA Report EVA Experiments Asteroid Sample Comet Sample Crew Report Mystery Goo Observation Materials Study Temperature Scan Atmospheric Pressure Scan Gravity Scan Seismic Scan Atmosphere Analysis Infrared Telescope Magnetometer Boom
Surface: Landed Biome Biome Global Biome Biome Biome Biome Biome Biome Biome Biome Biome Biome
Surface: Splashed Biome Biome Biome Biome Biome Biome Biome Biome Biome Biome
Flying Low Biome Biome Biome Biome Global Global Biome Global Biome
Flying High Global Global Global Global Global Global Global Global Biome
In Space Low Biome Global Global Global Global Global Global Global Global Biome Global
In Space High Global Global Global Global Global Global Global Global Global Biome Global Global

Crew

The following Activities are performed by Kerbals during an EVA or from within a crewed command module.

Surface Sample

Requires One kerbonaut
Data size 30 Mits
Base value 30
Maximum value 40
Data scale 1
Transmission efficiency 25%
Processing energy 300 ⚡

Surface Samples can be taken by kerbonauts when performing an EVA on the ground (or from on top of a landed or splashed craft) or in water of a celestial body. The results vary by biome and situation (landed or splashed) just as with craft. However, there is one detail to note: a Kerbal swimming in the water is splashed, but a Kerbal standing on top of a splashed craft is landed. So two different surface samples can be collected from any floating craft.

In Career mode, Surface Samples cannot be taken without having the Research and Development Facility and Astronaut Complex upgraded to second level.

EVA Report

Requires One kerbonaut
Data size 8 Mits
Base value 8
Maximum value 8
Data scale 1
Transmission efficiency 100%
Processing energy 80 ⚡

EVA Reports are performed by kerbonauts on an EVA. The results vary by biome and situation (landed, splashed, or "flying"). There is one detail to note: a Kerbal swimming in the water is splashed, but a Kerbal standing on top of a splashed craft is landed — up to three different EVA reports can be collected from any floating craft. The easiest ways to take a Flying Low report are to jump from the surface or hang onto a ladder.

Only one EVA Report per biome/situation combination is necessary. A kerbonaut can only take and hold one EVA Report at a time without storing it in a Command Pod, though reports retrieved from a Command Pod have no limitations on how many of a type can be carried.

EVA Experiments

Requires One kerbonaut
Data size 25 Mits
Base value 25
Maximum value 25
Data scale 1
Transmission efficiency 100%
Processing energy 250 ⚡

EVA Experiments are performed by kerbonauts on an EVA, using the EVA Experiments Kit. The kerbonaut may not hold on to a ladder when doing the experiment. This type of science was added in version 1.11.

Asteroid Sample

Requires
Data size 60 Mits
Base value 60
Maximum value 70
Data scale 1
Transmission efficiency 30%
Processing energy 600 ⚡

Asteroid Samples can be taken by kerbonauts when performing an EVA close to an asteroid. The samples give various results depending on the altitude of the orbiting planet.

Comet Sample

Requires
Period Short Intermediate Long Interstellar
Data size 90 Mits 135 Mits 270 Mits 900 Mits
Base value 90 135 270 900
Maximum value 100 150 300 1000
Data scale 1 1 1 1
Transmission efficiency 60% 60% 60% 60%
Processing energy 900 ⚡ 1350 ⚡ 2700 ⚡ 9000 ⚡

Comet Samples can be taken by kerbonauts when performing an EVA close to a comet. The samples give various results depending on the altitude of orbit and situation. The science produced depends on the period of the comet.

Crew Report

Requires A manned command pod
Data size 5 Mits
Base value 5
Maximum value 5
Data scale 1
Transmission efficiency 100%
Processing energy 50 ⚡

Crew Reports can be created in any manned command pod. Reports uniquely differ between celestial body and situation. Because the transmission efficiency is 100%, repeating them or transmitting them multiple times yields no additional Science.

If a command pod has taken a Crew Report but not transmitted it, it cannot take a new report even when in a new situation, biome, or sphere of influence. This limitation can be circumvented by having a kerbonaut on EVA "take data" from the command pod. Even if they store the data in the same command pod it was taken from, the Crew Report will be treated as just another piece of data to store. A second Crew Report can be taken even in exactly the same spot; no additional points are yielded by duplicate Crew Reports though.

Modules

Experiments done by separate parts like the Mystery Goo™ Containment Unit behave similarly to Crew Reports. They may be performed in different flight phases and on different celestial bodies returning different results. Each module can only store one result at a time, but a result can be sent home with an antenna to allow the experiment to be performed again under the same or under new conditions. Data can also be extracted from the module by a kerbonaut during an EVA. There is a penalty for transmitting data home instead of recovering the module to Kerbin.

Since version 0.23, transmitting or collecting data renders the Mystery Goo™ Containment Unit and SC-9001 Science Jr. disabled for the remainder of a flight. If the craft has (or can be docked with) a fully crewed lab, it can reset those modules at a cost of time and electric charge. Since version 1.0, these modules can also be reset by a scientist on EVA, allowing a craft with a scientist on board to collect multiple results (from different situations and biomes) on a single mission, without needing a full lab as part of the craft. The results collected and stored during a mission can be transferred to a lab at the end of the mission (or taken back to Kerbin).

Table of science modules

Experiment Mystery Goo Observation Temperature Scan Atmospheric Pressure Scan Materials Study Seismic Scan Atmosphere Analysis Infrared Telescope Magnetometer Report Gravity Scan
Required part (tech tree lvl) Mystery Goo™ Containment Unit (1) 2HOT Thermometer (2) PresMat Barometer (3) SC-9001 Science Jr. (4) Double-C Seismic Accelerometer (7) Atmospheric Fluid Spectro-Variometer (7) SENTINEL Infrared Telescope (7) Magnetometer Boom (7) GRAVMAX Negative Gravioli Detector (8)
Data size 10 Mits 8 Mits 12 Mits 25 Mits 50 Mits 200 Mits 30 Mits 45 Mits 60 Mits
Base value 10 8 12 25 20 20 15 45 20
Maximum value 13 8 12 32 22 24 22 45 22
Data scale 1 1 1 1 2.5 10 2 1 3
Transmission efficiency 30% 50% 50% 35% 45% 60% 40% 60% 40%
Processing energy (⚡) 100 80 120 250 500 2000 300 450 600

The transmission efficiency caps the maximum returnable science with the experiment via antennae. To gather all scientific value experiments needs to be recovered. With the release of 1.0, transmission efficiency drops radically on experiments that have already been performed and transmitted. If an experiment is recovered, transmission efficiency for that experiment drops to zero (situation and biome specific).

Recovering the maximum value of an experiment

Experiments that have a maximum value different from the minimum value will only give a certain percentage of its remaining value, this percentage can be calculated using the formula: Minimum value/ Maximum value. Consequently, these experiments can be repeated to get more fractions of the remaining points. An effective way to do this is by recovering multiple copies of an experiment. This can easily be accomplished by storing the experiments inside multiple Experiment Storage Units and then recovering it.

Repeated experiment value
Experiment Mystery Goo Observation Temperature Scan Atmospheric Pressure Scan Materials Study Seismic Scan Atmosphere Analysis Infrared Telescope Magnetometer Report Gravity Scan
Percentage 1 → 77%
2 → 95%
3 → 99%
4 → 100%
1 → 100% 1 → 100% 1 → 78%
2 → 95%
3 → 99%
4 → 100%
1 → 91%
2 → 99%
1 → 83%
2 → 97%
3 → 100%
1 → 68%
2 → 90%
3 → 97%
4 → 99%
1 → 100% 1 → 91%
2 → 99%

You will need at most 4 copies (experiments with higher percentages need less) of an experiment to get close enough to 100% for it to be noticeable in the Archives section.

Take Mystery Goo for example. With base value of 10 and maximum value of 13, each consecutive experiment will yield 10/13 ≈ 77% of the remaining value. That results in the following numbers - assuming a location multiplier of 1×, such as LKO.

Repetition Experiment value Cumulative value
#1 76.92% 10.0⚛
#2 17.75% 2.3⚛ 94.67% 12.3⚛
#3 4.10% 0.5⚛ 98.77% 12.8⚛
#4 0.95% 0.1⚛ 99.72% 13.0⚛

Note: in the Archives section it is shown how many science points have been obtained from an experiment - right-most column, labelled "Science" - with two decimal digits (0.01) precision. In order to max out this value, the worst case is the Infrared Telescope in Low Orbit around Eeloo: you will need 10 copies of the experiment!

Craft recovery

Celestial Body Flyby Orbital Flight Suborbital Flight Atmospheric Flight Surface Landed
Kerbin Base Value N/A 10 8 5 N/A
Max Value N/A 12 9.6 6 N/A
Other Base Value 6 8 10 12 15
Max Value 7.2 9.6 12 14.4 18
The Base- and Max Value of celestial bodies other than Kerbin have to be multiplied by their body-specific recovery multiplier listed below.

Recovering any craft with a command module after flight will yield science points based on the most scientifically valuable phase (based on Max Value*Celestial body multiplier) of the journey. As seen in the table the value of each phase increases the closer a spacecraft has been to orbit. The opposite is true for other celestial bodies. In order to earn recovery science from atmospheric flight, the craft cannot reach a suborbital trajectory, as this would become marked as the most valuable phase of the flight. This is even the case when many suborbital flights have been performed before it, and science returns would be effectively higher from a craft that only experienced flight. The different phases are defined as follows:

  • Flyby: Only the periapsis is within the SOI.
  • Orbit: The periapsis and apoapsis are within the SOI and the orbit does not intersect the surface.
  • Suborbit: The ship is above and the periapsis is inside the atmosphere or the surface.
  • Flight: The body is within the atmosphere.
  • Landed: The craft is touching the surface of the body.
  • Splashed down: The ship is touching water without touching the ground. It cannot touch the ground because, for example, it is possible to be Landed on Kerbin's water if you get a ship to sink to the ocean floor.


To receive science closer to the maximum science value in one trip, it is possible to have multiple command modules on a craft which can separate when landed so "multiple craft" can be recovered. Decouplers or separators can be used for this, when using light probe cores ejection force should be reduced as to avoid high velocity lithobraking.

Celestial body multipliers

Each celestial body has different multipliers applied to the collected scientific data, based upon where it is taken in relation to that body. Biomes do not affect these multipliers.

The altitudes given in this table determine the altitude above mean sea level of the boundary between lower and upper atmosphere and between near and outer space. The upper atmosphere extends to the atmospheric height and the outer space extends up to the end of the sphere of influence.

Surface Atmosphere Space Total
Celestial body Landed Splashed Low High Border Limit Low High Border Recovery Total Science Total Data
Kerbol N/A N/A 18 km 600 km 11× 1000 Mm
Moho 10× N/A N/A N/A N/A N/A 80 km
Eve 22 km 90 km 400 km
Gilly N/A N/A N/A N/A N/A 6 km
Kerbin 0.3× 0.4× 0.7× 0.9× 18 km 70 km 1.5× 250 km
Mun N/A N/A N/A N/A N/A 60 km
Minmus N/A N/A N/A N/A N/A 2.5× 30 km 2.5×
Duna N/A 12 km 50 km 140 km
Ike N/A N/A N/A N/A N/A 50 km
Dres N/A N/A N/A N/A N/A 25 km
Jool N/A N/A 12× 120 km 200 km 4 Mm
Laythe 14× 12× 11× 10× 10 km 50 km 200 km
Vall 12× N/A N/A N/A N/A N/A 90 km
Tylo 12× N/A N/A N/A N/A N/A 10× 250 km
Bop 12× N/A N/A N/A N/A N/A 25 km
Pol 12× N/A N/A N/A N/A N/A 22 km
Eeloo 15× N/A N/A N/A N/A N/A 12× 10× 60 km 10×

Contracts

As of 0.24, players can access various contracts at Mission Control while playing in career mode. The rewards for accomplishing contracts vary and can include a significant amount of Science.

Acquisition Strategies

The most efficient way to gather all science on a planet or moon from orbit is to enter a polar orbit at or near 90 degrees inclination, set the periapsis to the lowest point that will not impact the surface or the atmosphere and adjust the semi-major axis to twice the sum of the radius of the orbited body and the margin between high and low orbit. This will cause the craft to be at various times both high and low over every biome on the body, eventually gathering all science that can be gathered from orbit. For example, with the Mun this means a polar orbit of 90 degrees, with a periapsis of 20 Km and an apoapsis of 620 Km. Both the periapsis and apoapsis should be exactly at the equator for best results.

Administrative Strategies

The various strategies that can be implemented at the Administration Facility while playing in career mode also have a significant effect on science income. Each strategy is based on trading one "resource" (reputation, funds, or science) for another as each is earned. Thus, at the cost of reputation or funds, the player can boost their science income. Conversely, the player can spend science to boost one of the other two resources. For example, the strategy "Outsourced R&D" yields science at the cost of funds, while "Open-Source Tech Program" will take a fraction of the player's science every time it is earned and convert it to reputation. Anywhere from 5% to 100% of the income from any of the resources can be converted into one of the others.

Science Archives

The Science Archive

A filterable list of the experiments which have been performed so far can be accessed through the “Science Archive” tab in the Research and Development window.

The entries show what data have been brought back and whether more data from repeating activities can be gathered. If the bar below an experiment is not completely full, as shown in some of the examples on the right, the experiment can be repeated to gain additional science. This is also useful to see what biomes and situations haven't been covered yet and provide the richest opportunities.

Breaking ground science experiments

The Breaking ground expansion bring two new types of science experiments: a standard ground experiment and deployable science modules. Both types are global per celestial body, depend on the body science multiplier and can only be done landed.

Robotic arm scan

There are 3 types of robotic arms which collect respectively 1/3, 2/3 and the whole experiment. The arm must be close to a surface feature in order to work. After that, the result can either be transmitted or grabed by a kerbal on EVA like any other experiment. It is better advised to use a rover with the robotic arm because proximity with a surface feature is important and cannot be corrected with a static landed ship.

2 to 3 tiers of surface features are available on each body. The first tier can also be picked up by a kerbal as stones for example.

Experiment Tier 1 Tier 2 Tier 3
Data size 30 Mits 45 Mits 60 Mits
Base value 30 45 60
Maximum value 30 45 60
Data scale 1 1 1
Transmission efficiency 100% 100% 100%

Deployable science

Deployable science modules are a completely new type of science experiments consisting in letting modules on a foreign body and receiving science points every hour without any kerbal or probe intervention.

A deployable science module must be set with other modules

All science modules must be set by a scientist for faster science points collection.

Experiment Grand Slam Passive Seismometer Go-ob ED Monitor Ionographer PD-22 PD-3 Weather Analyzer
Environment Everywhere Everywhere Vacuum Atmospheric
Base multiplier 1 0.28125 0.3125 0.3
Maximum value 80 45 100 60

The base multiplier is used to calculate the science per hour (or ratio for the seismometer). The formula is: base multiplier · kerbal level multiplier · body surface science multiplier

The table for the kerbal multiplier value is the following:

Level Value
Not scientist 0.05
Level 0 0.25
Level 1 0.35
Level 2 0.45
Level 3 0.60
Level 4 0.80
Level 5 1.00

For example a level 3 scientist deploying an ionographer experiment on Mun gives 0.3125 · 0.60 · 4 = 0.75 science points per hour