Source Count Distribution of Fermi LAT Gamma-Ray Blazars Using Novel Nonparametric Methods
Abstract
1. Introduction
2. Sample
3. Analysis and Results
3.1. Correlations
3.2. Distributions
3.3. Detection Efficiencies
3.4. Contribution to the EGB and IGRB
4. Summary and Discussion
- Flux–index relations: Addressing the bias towards hard sources in the photon flux limit (Figure 1), we applied the EP method to correct for this bias, resulting in a correlation-corrected spectral index . Our analysis revealed no significant correlation for all blazars (), with only a weak correlation being observed for FSRQs () and BL Lacs () individually.
- Intrinsic distributions: Employing the Lynden-Bell method, we derived cumulative distributions and subsequently obtained differential distributions through numerical derivation. The true intrinsic differential distributions of flux exhibited a broken power law for blazars, FSRQs, and BL Lacs, individually. The intrinsic photon index distributions were described well by Gaussian forms for FSRQs and BL Lacs individually; however, when considering the sample as a whole, double Gaussians provided a better fit. Table 1 summarizes the best-fit parameters for the intrinsic flux and photon index distributions, comparing them with the results of previous studies (i.e., [16,17]).
- Detection efficiency: The source count distribution at , shown in the left panel of Figure 4, displayed a broken power law for ph cm−2 s−1. Below this flux threshold, the observed distribution dropped rapidly due to the challenges in detecting fainter sources with Fermi-LAT. We calculated the detection efficiency by comparing observed sources with the theoretical distribution in photon flux.
- EGB and IGRB: Through the nonparametric determination of intrinsic distributions of photon flux and the spectral index, along with considerations of the detection efficiency, we directly calculated the contributions of all Fermi-LAT blazars to the EGB’s and IGRB’s intensity and spectra. Our findings indicate that blazars up to the flux threshold of Fermi-LAT, i.e., ph cm−2 s−1, could explain 34.5% of observed EGB photons and 32.6% of observed IGRB photons. For FSRQs and BL Lacs, we estimated their contributions to the EGB without considering the detection efficiency, revealing that FSRQs and BL Lacs could account for 19.6% and 13% of the observed EGB, respectively.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
1 | https://fermi.gsfc.nasa.gov/ssc/data/access/lat/8yr_catalog/gll_psc_v20.fit, (accessed on 6 August 2020). |
2 | https://fermi.gsfc.nasa.gov/ssc/data/access/lat/14yr_catalog/, (accessed on 20 December 2023). |
3 | https://fermi.gsfc.nasa.gov/ssc/data/access/lat/14yr_catalog/gll_psc_v33.fit, (accessed on 20 December 2023). |
4 | The subscript 2 in and represents 100 MeV and 5 represents 100 GeV. |
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Sample | log10() | ||||||
---|---|---|---|---|---|---|---|
Blazars (this work) | |||||||
Blazars (EP-L) | − | ||||||
Blazars (MA) | − | − | |||||
FSRQs (this work) | |||||||
FSRQs (EP-L) | − | ||||||
FSRQs (MA) | − | − | |||||
BL Lacs (this work) | |||||||
BL Lacs (EP-L) | − | ||||||
BL Lacs (MA) | − | − |
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Yin, X.; Zeng, H. Source Count Distribution of Fermi LAT Gamma-Ray Blazars Using Novel Nonparametric Methods. Universe 2024, 10, 340. https://doi.org/10.3390/universe10090340
Yin X, Zeng H. Source Count Distribution of Fermi LAT Gamma-Ray Blazars Using Novel Nonparametric Methods. Universe. 2024; 10(9):340. https://doi.org/10.3390/universe10090340
Chicago/Turabian StyleYin, Xuhang, and Houdun Zeng. 2024. "Source Count Distribution of Fermi LAT Gamma-Ray Blazars Using Novel Nonparametric Methods" Universe 10, no. 9: 340. https://doi.org/10.3390/universe10090340
APA StyleYin, X., & Zeng, H. (2024). Source Count Distribution of Fermi LAT Gamma-Ray Blazars Using Novel Nonparametric Methods. Universe, 10(9), 340. https://doi.org/10.3390/universe10090340