论文标题

欧几里得:宇宙学的预测来自空隙尺寸功能

Euclid: Cosmological forecasts from the void size function

论文作者

Contarini, S., Verza, G., Pisani, A., Hamaus, N., Sahlén, M., Carbone, C., Dusini, S., Marulli, F., Moscardini, L., Renzi, A., Sirignano, C., Stanco, L., Aubert, M., Bonici, M., Castignani, G., Courtois, H. M., Escoffier, S., Guinet, D., Kovacs, A., Lavaux, G., Massara, E., Nadathur, S., Pollina, G., Ronconi, T., Ruppin, F., Sakr, Z., Veropalumbo, A., Wandelt, B. D., Amara, A., Auricchio, N., Baldi, M., Bonino, D., Branchini, E., Brescia, M., Brinchmann, J., Camera, S., Capobianco, V., Carretero, J., Castellano, M., Cavuoti, S., Cledassou, R., Congedo, G., Conselice, C. J., Conversi, L., Copin, Y., Corcione, L., Courbin, F., Cropper, M., Da Silva, A., Degaudenzi, H., Dubath, F., Duncan, C. A. J., Dupac, X., Ealet, A., Farrens, S., Ferriol, S., Fosalba, P., Frailis, M., Franceschi, E., Garilli, B., Gillard, W., Gillis, B., Giocoli, C., Grazian, A., Grupp, F., Guzzo, L., Haugan, S., Holmes, W., Hormuth, F., Jahnke, K., Kümmel, M., Kermiche, S., Kiessling, A., Kilbinger, M., Kunz, M., Kurki-Suonio, H., Laureijs, R., Ligori, S., Lilje, P. B., Lloro, I., Maiorano, E., Mansutti, O., Marggraf, O., Markovic, K., Massey, R., Melchior, M., Meneghetti, M., Meylan, G., Moresco, M., Munari, E., Niemi, S. M., Padilla, C., Paltani, S., Pasian, F., Pedersen, K., Percival, W. J., Pettorino, V., Pires, S., Polenta, G., Poncet, M., Popa, L., Pozzetti, L., Raison, F., Rhodes, J., Rossetti, E., Saglia, R., Sartoris, B., Schneider, P., Secroun, A., Seidel, G., Sirri, G., Surace, C., Tallada-Crespí, P., Taylor, A. N., Tereno, I., Toledo-Moreo, R., Torradeflot, F., Valentijn, E. A., Valenziano, L., Wang, Y., Weller, J., Zamorani, G., Zoubian, J., Andreon, S., Maino, D., Mei, S.

论文摘要

Euclid Mission $ - $带有光谱银河系调查,涵盖了$ 15 \,000 \ \ Mathrm {deg}^2 $的天空面积,RedShift范围内$ 0.9 <z <z <1.8 \ - $将提供成千上万个宇宙voids的样本。本文首次探讨了Void尺寸函数在官方Euclid旗舰模拟的调查模拟目录中对暗能量(DE)属性的约束功能。我们识别旗舰轻锥中的空隙,该空隙与即将到来的欧几里克光谱数据集的特征非常匹配。我们在考虑最先进的方法中对空隙尺寸函数进行建模:我们依靠节约的体积(VDN)模型,这是对空隙数量计数的流行的Sheth&van de Weygaert模型的修改,通过大规模星系偏置的线性函数扩展。我们发现模型预测与测量的模拟空隙数量计数之间有着极好的一致性。我们计算了从空隙函数对DE的Euclid Mission的更新预测,并提供可靠的空隙数估计值,以作为使用空隙对宇宙学应用程序进行进一步预测的基础。我们分析了de的两个不同的宇宙学模型:第一个由状态参数的恒定de方程式描述,$ w $,第二个由系数$ w_0 $和$ w_a $的动态状态方程式分析。我们预测$ W $低于$ 10 \%$的$1σ$错误,并且我们估计动态de scenario $ \ mathrm {fom} _ {w_0,w_a} = 17 $的预期功能(FOM)仅考虑中性质量作为模型的附加免费参数。该分析基于保守的假设以确保完全鲁棒性,并且是该技术未来增强的探路。我们的结果展示了从欧几里克光谱样品中的空隙尺寸函数的令人印象深刻的约束功率,均以独立的探针,并与其他欧几里得宇宙学探针结合使用。

The Euclid mission $-$ with its spectroscopic galaxy survey covering a sky area over $15\,000 \ \mathrm{deg}^2$ in the redshift range $0.9<z<1.8\ -$ will provide a sample of tens of thousands of cosmic voids. This paper explores for the first time the constraining power of the void size function on the properties of dark energy (DE) from a survey mock catalogue, the official Euclid Flagship simulation. We identify voids in the Flagship light-cone, which closely matches the features of the upcoming Euclid spectroscopic data set. We model the void size function considering a state-of-the art methodology: we rely on the volume conserving (Vdn) model, a modification of the popular Sheth & van de Weygaert model for void number counts, extended by means of a linear function of the large-scale galaxy bias. We find an excellent agreement between model predictions and measured mock void number counts. We compute updated forecasts for the Euclid mission on DE from the void size function and provide reliable void number estimates to serve as a basis for further forecasts of cosmological applications using voids. We analyse two different cosmological models for DE: the first described by a constant DE equation of state parameter, $w$, and the second by a dynamic equation of state with coefficients $w_0$ and $w_a$. We forecast $1σ$ errors on $w$ lower than $10\%$, and we estimate an expected figure of merit (FoM) for the dynamical DE scenario $\mathrm{FoM}_{w_0,w_a} = 17$ when considering only the neutrino mass as additional free parameter of the model. The analysis is based on conservative assumptions to ensure full robustness, and is a pathfinder for future enhancements of the technique. Our results showcase the impressive constraining power of the void size function from the Euclid spectroscopic sample, both as a stand-alone probe, and to be combined with other Euclid cosmological probes.

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