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Astrophysical Journal Supplement Series | 2014

PLANETARY CANDIDATES OBSERVED BY KEPLER IV: PLANET SAMPLE FROM Q1-Q8 (22 MONTHS)

Christopher J. Burke; Stephen T. Bryson; Fergal Mullally; Jason F. Rowe; Jessie L. Christiansen; Susan E. Thompson; Jeffrey L. Coughlin; Michael R. Haas; Natalie M. Batalha; Douglas A. Caldwell; Jon M. Jenkins; Martin Still; William J. Borucki; W. J. Chaplin; David R. Ciardi; Bruce D. Clarke; William D. Cochran; Brice-Olivier Demory; Gilbert A. Esquerdo; Thomas N. Gautier; Ronald L. Gilliland; Forrest R. Girouard; Mathieu Havel; Christopher E. Henze; Steve B. Howell; Daniel Huber; David W. Latham; Jie Li; Robert C. Morehead; Timothy D. Morton

We provide updates to the Kepler planet candidate sample based upon nearly two years of highprecision photometry (i.e., Q1-Q8). From an initial list of nearly 13,400 Threshold Crossing Events (TCEs), 480 new host stars are identified from their flux time series as consistent with hosting transiting planets. Potential transit signals are subjected to further analysis using the pixel-level data, which allows background eclipsing binaries to be identified through small image position shifts during transit. We also re-evaluate Kepler Objects of Interest (KOI) 1-1609, which were identified early in the mission, using substantially more data to test for background false positives and to find additional multiple systems. Combining the new and previous KOI samples, we provide updated parameters for 2,738 Kepler planet candidates distributed across 2,017 host stars. From the combined Kepler planet candidates, 472 are new from the Q1-Q8 data examined in this study. The new Kepler planet candidates represent ∼40% of the sample with RP∼1R⊕ and represent ∼40% of the low equilibrium temperature (Teq<300 K) sample. We review the known biases in the current sample of Kepler planet candidates relevant to evaluating planet population statistics with the current Kepler planet candidate sample. Subject headings: catalogs – eclipses – planetary systems – space vehicles


Science | 2014

An earth-sized planet in the habitable zone of a cool star

Elisa V. Quintana; Sean N. Raymond; Jason F. Rowe; Emeline Bolmont; Douglas A. Caldwell; Steve B. Howell; Stephen R. Kane; Daniel Huber; Justin R. Crepp; Jack J. Lissauer; David R. Ciardi; Jeffrey L. Coughlin; Mark E. Everett; Christopher E. Henze; Elliott P. Horch; Howard Isaacson; Eric B. Ford; Fred C. Adams; Martin Still; Roger C. Hunter; Billy Quarles; Franck Selsis

Starry Brightness The high photometric precision of NASAs Kepler observatory has enabled the detection of many planets because they cause slight dimming of their host stars as they orbit in front of them. From these data, Quintana et al. (p. 277) have spotted a five-planet system around a small star. Here, the outermost planet is only 10% larger than Earth and completes its 130-day orbit entirely within the habitable zone, where liquid water could exist on its surface. Similarly, Kepler can detect faint periodic brightenings, as Kruse and Agol (p. 275) have reported for the binary system KOI-3278. In this system, a white dwarf acts as a gravitational microlens when it passes in front of its Sun-like G-star companion every 88 days. The lensing effect allows the mass of the white dwarf to be estimated, which helps us to understand how similar binary systems may have evolved. NASA’s Kepler mission revealed that the fifth and outermost planet orbiting Kepler-186 is capable of hosting liquid water. The quest for Earth-like planets is a major focus of current exoplanet research. Although planets that are Earth-sized and smaller have been detected, these planets reside in orbits that are too close to their host star to allow liquid water on their surfaces. We present the detection of Kepler-186f, a 1.11 ± 0.14 Earth-radius planet that is the outermost of five planets, all roughly Earth-sized, that transit a 0.47 ± 0.05 solar-radius star. The intensity and spectrum of the star’s radiation place Kepler-186f in the stellar habitable zone, implying that if Kepler-186f has an Earth-like atmosphere and water at its surface, then some of this water is likely to be in liquid form.


The Astrophysical Journal | 2015

Terrestrial Planet Occurrence Rates for the Kepler GK Dwarf Sample

Christopher J. Burke; Jessie L. Christiansen; Fergal Mullally; Shawn E. Seader; Daniel Huber; Jason F. Rowe; Jeffrey L. Coughlin; Susan E. Thompson; Joseph Catanzarite; Bruce D. Clarke; Timothy D. Morton; Douglas A. Caldwell; Stephen T. Bryson; Michael R. Haas; Natalie M. Batalha; Jon M. Jenkins; Peter Tenenbaum; Joseph D. Twicken; Jie Li; Elisa V. Quintana; Christopher E. Henze; William J. Borucki; Steve B. Howell; Martin Still

We measure planet occurrence rates using the planet candidates discovered by the Q1-Q16 Kepler pipeline search. This study examines planet occurrence rates for the Kepler GK dwarf target sample for planet radii, 0.75<Rp<2.5 Rearth, and orbital periods, 50<Porb<300 days, with an emphasis on a thorough exploration and identification of the most important sources of systematic uncertainties. Integrating over this parameter space, we measure an occurrence rate of F=0.77 planets per star, with an allowed range of 0.3<F<1.9. The allowed range takes into account both statistical and systematic uncertainties, and values of F beyond the allowed range are significantly in disagreement with our analysis. We generally find higher planet occurrence rates and a steeper increase in planet occurrence rates towards small planets than previous studies of the Kepler GK dwarf sample. Through extrapolation, we find that the one year orbital period terrestrial planet occurrence rate, zeta_1=0.1, with an allowed range of 0.01<zeta_1<2, where zeta_1 is defined as the number of planets per star within 20% of the Rp and Porb of Earth. For G dwarf hosts, the zeta_1 parameter space is a subset of the larger eta_earth parameter space, thus zeta_1 places a lower limit on eta_earth for G dwarf hosts. From our analysis, we identify the leading sources of systematics impacting Kepler occurrence rate determinations as: reliability of the planet candidate sample, planet radii, pipeline completeness, and stellar parameters.


The Astrophysical Journal | 2016

FALSE POSITIVE PROBABILITIES FOR ALL KEPLER OBJECTS OF INTEREST: 1284 NEWLY VALIDATED PLANETS AND 428 LIKELY FALSE POSITIVES

Timothy D. Morton; Stephen T. Bryson; Jeffrey L. Coughlin; Jason F. Rowe; Ganesh Ravichandran; Erik A. Petigura; Michael R. Haas; Natalie M. Batalha

We present astrophysical false positive probability calculations for every Kepler Object of Interest (KOI)—the first large-scale demonstration of a fully automated transiting planet validation procedure. Out of 7056 KOIs, we determine that 1935 have probabilities <1% of being astrophysical false positives, and thus may be considered validated planets. Of these, 1284 have not yet been validated or confirmed by other methods. In addition, we identify 428 KOIs that are likely to be false positives, but have not yet been identified as such, though some of these may be a result of unidentified transit timing variations. A side product of these calculations is full stellar property posterior samplings for every host star, modeled as single, binary, and triple systems. These calculations use vespa, a publicly available Python package that is able to be easily applied to any transiting exoplanet candidate.


Astrophysical Journal Supplement Series | 2015

PLANETARY CANDIDATES OBSERVED BYKEPLER. VI. PLANET SAMPLE FROM Q1–Q16 (47 MONTHS)

Fergal Mullally; Jeffrey L. Coughlin; Susan E. Thompson; Jason F. Rowe; Christopher J. Burke; David W. Latham; Natalie M. Batalha; Stephen T. Bryson; Jessie L. Christiansen; Christopher E. Henze; A. Ofir; Billy Quarles; Avi Shporer; Vincent Van Eylen; Christa Van Laerhoven; Yash Shah; Angie Wolfgang; W. J. Chaplin; Ji-Wei Xie; R. L. Akeson; Vic S. Argabright; Eric Bachtell; William J. Borucki; Douglas A. Caldwell; Jennifer R. Campbell; Joseph H. Catanzarite; William D. Cochran; Riley M. Duren; Scott W. Fleming; Dorothy Ann Fraquelli

We provide updates to the Kepler planet candidate sample based upon nearly two years of high-precision photometry (i.e., Q1-Q8). From an initial list of nearly 13,400 threshold crossing events, 480 new host stars are identified from their flux time series as consistent with hosting transiting planets. Potential transit signals are subjected to further analysis using the pixel-level data, which allows background eclipsing binaries to be identified through small image position shifts during transit. We also re-evaluate Kepler Objects of Interest (KOIs) 1-1609, which were identified early in the mission, using substantially more data to test for background false positives and to find additional multiple systems. Combining the new and previous KOI samples, we provide updated parameters for 2738 Kepler planet candidates distributed across 2017 host stars. From the combined Kepler planet candidates, 472 are new from the Q1-Q8 data examined in this study. The new Kepler planet candidates represent ~40% of the sample with R P ~ 1 R ? and represent ~40% of the low equilibrium temperature (T eq < 300?K) sample. We review the known biases in the current sample of Kepler planet candidates relevant to evaluating planet population statistics with the current Kepler planet candidate sample.


Astrophysical Journal Supplement Series | 2016

PLANETARY CANDIDATES OBSERVED BY KEPLER. VII. THE FIRST FULLY UNIFORM CATALOG BASED ON THE ENTIRE 48-MONTH DATA SET (Q1–Q17 DR24)

Jeffrey L. Coughlin; R. L. Akeson; Jessie L. Christiansen; Solange V. Ramirez

We present the seventh Kepler planet candidate (PC) catalog, which is the first catalog to be based on the entire, uniformly processed 48-month Kepler data set. This is the first fully automated catalog, employing robotic vetting procedures to uniformly evaluate every periodic signal detected by the Q1–Q17 Data Release 24 (DR24) Kepler pipeline. While we prioritize uniform vetting over the absolute correctness of individual objects, we find that our robotic vetting is overall comparable to, and in most cases superior to, the human vetting procedures employed by past catalogs. This catalog is the first to utilize artificial transit injection to evaluate the performance of our vetting procedures and to quantify potential biases, which are essential for accurate computation of planetary occurrence rates. With respect to the cumulative Kepler Object of Interest (KOI) catalog, we designate 1478 new KOIs, of which 402 are dispositioned as PCs. Also, 237 KOIs dispositioned as false positives (FPs) in previous Kepler catalogs have their disposition changed to PC and 118 PCs have their disposition changed to FPs. This brings the total number of known KOIs to 8826 and PCs to 4696. We compare the Q1–Q17 DR24 KOI catalog to previous KOI catalogs, as well as ancillary Kepler catalogs, finding good agreement between them. We highlight new PCs that are both potentially rocky and potentially in the habitable zone of their host stars, many of which orbit solar-type stars. This work represents significant progress in accurately determining the fraction of Earth-size planets in the habitable zone of Sun-like stars. The full catalog is publicly available at the NASA Exoplanet Archive.


Astrophysical Journal Supplement Series | 2015

Planetary Candidates Observed by Kepler. V. Planet Sample from Q1?Q12 (36 Months)

Jason F. Rowe; Jeffrey L. Coughlin; V. Antoci; Natalie M. Batalha; William J. Borucki; Christopher J. Burke; S. T. Bryson; Douglas A. Caldwell; Jennifer R. Campbell; Joseph H. Catanzarite; Jessie L. Christiansen; William D. Cochran; Ronald L. Gilliland; Forrest R. Girouard; Michael R. Haas; K. G. Hełminiak; Christopher E. Henze; Kelsey Hoffman; Steve B. Howell; Daniel Huber; Roger C. Hunter; Hannah Jang-Condell; Jon M. Jenkins; Todd C. Klaus; David W. Latham; Jie Li; Jack J. Lissauer; Sean McCauliff; Robert L. Morris; Fergal Mullally

We provide updates to the Kepler planet candidate sample based upon nearly two years of high-precision photometry (i.e., Q1-Q8). From an initial list of nearly 13,400 Threshold Crossing Events (TCEs), 480 new host stars are identified from their flux time series as consistent with hosting transiting planets. Potential transit signals are subjected to further analysis using the pixel-level data, which allows background eclipsing binaries to be identified through small image position shifts during transit. We also re-evaluate Kepler Objects of Interest (KOI) 1-1609, which were identified early in the mission, using substantially more data to test for background false positives and to find additional multiple systems. Combining the new and previous KOI samples, we provide updated parameters for 2,738 Kepler planet candidates distributed across 2,017 host stars. From the combined Kepler planet candidates, 472 are new from the Q1-Q8 data examined in this study. The new Kepler planet candidates represent ~40% of the sample with Rp~1 Rearth and represent ~40% of the low equilibrium temperature (Teq<300 K) sample. We review the known biases in the current sample of Kepler planet candidates relevant to evaluating planet population statistics with the current Kepler planet candidate sample.


The Astronomical Journal | 2011

Low-mass Eclipsing Binaries in the Initial Kepler Data Release

Jeffrey L. Coughlin; Mercedes Lopez-Morales; Thomas E. Harrison; Nick Ule; Douglas Irving Hoffman

We identify 231 objects in the newly released Cycle 0 data set from the Kepler Mission as double-eclipse, detached eclipsing binary systems with T_(eff) < 5500 K and orbital periods shorter than ~32 days. We model each light curve using the JKTEBOP code with a genetic algorithm to obtain precise values for each system. We identify 95 new systems with both components below 1.0 M_⊙ and eclipses of at least 0.1 mag, suitable for ground-based follow-up. Of these, 14 have periods less than 1.0 day, 52 have periods between 1.0 and 10.0 days, and 29 have periods greater than 10.0 days. This new sample of main-sequence, low-mass, double-eclipse, detached eclipsing binary candidates more than doubles the number of previously known systems and extends the sample into the completely heretofore unexplored P > 10.0 day period regime. We find preliminary evidence from these systems that the radii of low-mass stars in binary systems decrease with period. This supports the theory that binary spin-up is the primary cause of inflated radii in low-mass binary systems, although a full analysis of each system with radial-velocity and multi-color light curves is needed to fully explore this hypothesis. Also, we present seven new transiting planet candidates that do not appear among the list of 706 candidates recently released by the Kepler team, or in the Kepler False Positive Catalog, along with several other new and interesting systems. We also present novel techniques for the identification, period analysis, and modeling of eclipsing binaries.


The Astronomical Journal | 2014

Contamination in the Kepler Field. Identification of 685 KOIs as False Positives via Ephemeris Matching Based on Q1-Q12 Data

Jeffrey L. Coughlin; Susan E. Thompson; Stephen T. Bryson; Christopher J. Burke; Douglas A. Caldwell; Jessie L. Christiansen; Michael R. Haas; Steve B. Howell; Jon M. Jenkins; Jeffery J. Kolodziejczak; Fergal Mullally; Jason F. Rowe

The Kepler mission has to date found almost 6000 planetary transit-like signals, utilizing three years of data for over 170,000 stars at extremely high photometric precision. Due to its design, contamination from eclipsing binaries, variable stars, and other transiting planets results in a significant number of these signals being false positives (FPs). This directly affects the determination of the occurrence rate of Earth-like planets in our Galaxy, as well as other planet population statistics. In order to detect as many of these FPs as possible, we perform ephemeris matching among all transiting planet, eclipsing binary, and variable star sources. We find that 685 Kepler Objects of Interest (KOIs)—12% of all those analyzed—are FPs as a result of contamination, due to 409 unique parent sources. Of these, 118 have not previously been identified by other methods. We estimate that ~35% of KOIs are FPs due to contamination, when performing a first-order correction for observational bias. Comparing single-planet candidate KOIs to multi-planet candidate KOIs, we find an observed FP fraction due to contamination of 16% and 2.4% respectively, bolstering the existing evidence that multi-planet KOIs are significantly less likely to be FPs. We also analyze the parameter distributions of the ephemeris matches and derive a simple model for the most common type of contamination in the Kepler field. We find that the ephemeris matching technique is able to identify low signal-to-noise FPs that are difficult to identify with other vetting techniques. We expect FP KOIs to become more frequent when analyzing more quarters of Kepler data, and note that many of them will not be able to be identified based on Kepler data alone.


The Astrophysical Journal | 2013

A super-earth-sized planet orbiting in or near the habitable zone around a sun-like star

Christopher J. Burke; Steve B. Howell; Jason F. Rowe; Daniel Huber; Howard Isaacson; Jon M. Jenkins; Rea Kolbl; Geoffrey W. Marcy; Elisa V. Quintana; Martin Still; Joseph D. Twicken; Stephen T. Bryson; William J. Borucki; Douglas A. Caldwell; David R. Ciardi; Bruce D. Clarke; Jessie L. Christiansen; Jeffrey L. Coughlin; Debra A. Fischer; Jie Li; Michael R. Haas; Roger C. Hunter; Jack J. Lissauer; Fergal Mullally; Anima Sabale; Shawn E. Seader; Jeffrey C. Smith; Peter Tenenbaum; A. K. M. Kamal Uddin; Susan E. Thompson

We present the discovery of a super-Earth-sized planet in or near the habitable zone of a Sun-like star. The host is Kepler-69, a 13.7 mag G4V-type star. We detect two periodic sets of transit signals in the 3-year flux time series of Kepler-69, obtained with the Kepler spacecraft. Using the very high precision Kepler photometry, and follow-up observations, our confidence that these signals represent planetary transits is >99.3%. The inner planet, Kepler-69b, has a radius of 2.24^(+0.44)_(-0.29) R_⊕ and orbits the host star every 13.7 days. The outer planet, Kepler-69c, is a super-Earth-sized object with a radius of 1.7^(+0.34)_(-0.23) R_⊕ and an orbital period of 242.5 days. Assuming an Earth-like Bond albedo, Kepler-69c has an equilibrium temperature of 299 ± 19 K, which places the planet close to the habitable zone around the host star. This is the smallest planet found by Kepler to be orbiting in or near the habitable zone of a Sun-like star and represents an important step on the path to finding the first true Earth analog.

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Jessie L. Christiansen

California Institute of Technology

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Thomas E. Harrison

New Mexico State University

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Jie Li

Ames Research Center

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