请问“exp(−10−/β)”里面第二个“-”是什么？谢谢老师

NO.PZ202001030300001402 问题如下 Whis the cumulative probability of fault within the first ten years given ththe company hsurvivefor five years? We neeto vi the marginprobability of fault between years five anten:FY(10)−FY(5)F_Y(10)-F_Y(5)FY​(10)−FY​(5)the SURVIVprobability through yefive(1-result from Q1).FY(10)−FY(5)=exp(−5/β)−exp(−10/β)F_Y(10)-F_Y(5)=exp(-5/\beta)-exp(-10/ \beta)FY​(10)−FY​(5)=exp(−5/β)−exp(−10/β)FY(10)−FY(5)1−FY(5)=exp(−5/β)−exp(−10/β)exp(−5/β)=1−exp(−5/β)\frac{F_Y(10)-F_Y(5)}{1-F_Y(5)}=\frac{exp(-5/ \beta)-exp(-10/ \beta)}{exp(-5/ \beta)}=1-exp(-5/ \beta)1−FY​(5)FY​(10)−FY​(5)​=exp(−5/β)exp(−5/β)−exp(−10/β)​=1−exp(−5/β) 请问为什么是F Y ​ (10)−F Y ​ (5)

NO.PZ202001030300001402 问题如下 Whis the cumulative probability of fault within the first ten years given ththe company hsurvivefor five years? We neeto vi the marginprobability of fault between years five anten:FY(10)−FY(5)F_Y(10)-F_Y(5)FY​(10)−FY​(5)the SURVIVprobability through yefive(1-result from Q1).FY(10)−FY(5)=exp(−5/β)−exp(−10/β)F_Y(10)-F_Y(5)=exp(-5/\beta)-exp(-10/ \beta)FY​(10)−FY​(5)=exp(−5/β)−exp(−10/β)FY(10)−FY(5)1−FY(5)=exp(−5/β)−exp(−10/β)exp(−5/β)=1−exp(−5/β)\frac{F_Y(10)-F_Y(5)}{1-F_Y(5)}=\frac{exp(-5/ \beta)-exp(-10/ \beta)}{exp(-5/ \beta)}=1-exp(-5/ \beta)1−FY​(5)FY​(10)−FY​(5)​=exp(−5/β)exp(−5/β)−exp(−10/β)​=1−exp(−5/β) 如题

NO.PZ202001030300001402 请问这个SURVIVprobability的公式应该怎么理解呀？谢谢老师

为什么分子要减去fy(5)