1700146310
(3)当Ni+1 <Ni时,则有Ni+2 <Ni+1 ,最终B方获胜。
1700146311
1700146312
首先我们来证明(2)。
1700146313
1700146314
当Ni+1 =Ni时,根据战争循环因果序列,可有:
1700146315
1700146316
Pi+1 /Qi+1 =Pi/Qi
1700146317
1700146318
即(Pi-Eb Qi)/(Qi-Er Pi)=Pi/Qi
1700146319
1700146320
上式整理后可得:Eb/Er=(Pi/Qi)2=Ni2
1700146321
1700146322
即Eb=Er Ni2
1700146323
1700146324
而Ni+2 =Pi+2 /Qi+2 =(Pi+1 -Eb Qi+1 )/(Qi+1 -Er Pi+1 )
1700146325
1700146326
=(Pi-Eb Qi-Eb(Qi-Er Pi))/(Qi-Er Pi-Er(Pi-Eb Qi))
1700146327
1700146328
=(Pi+Pi Eb Er-2 Eb Qi)/(Qi+Qi Eb Er-2 Er Pi)
1700146329
1700146330
将Eb=Er Ni2代入上式,然后可得:
1700146331
1700146332
1700146333
1700146334
1700146335
下面再来证明(1)式。
1700146336
1700146337
Ni+2 =Pi+2 /Qi+2 =(Pi+1 -Eb Qi+1 )/(Qi+1 -Er Pi+1 )
1700146338
1700146339
=(Ni+1 -Eb)/(1-Er Ni+1 )
1700146340
1700146341
同理:
1700146342
1700146343
Ni+1 =(Ni-Eb)/(1-Er Ni)
1700146344
1700146345
因为Ni+1 >Ni
1700146346
1700146347
所以Ni+1 -Eb>Ni-Eb>0
1700146348
1700146349
且0<1-Er Ni+1 <1-Er Ni
1700146350
1700146351
因此(Ni+1 -Eb)/(1-Er Ni+1 )>(Ni-Eb)/(1-Er Ni)
1700146352
1700146353
故Ni+2 >Ni+1
1700146354
1700146355
同理可证(3)式。
1700146356
1700146357
存量比定理的直观理解和解释是:当战斗进行时,不能仅仅从绝对数量上看消灭了敌方多少战斗单位,而应当计算双方的存量比情况。如果存量比朝着有利于己方的方向发生变化,最终己方就会获胜。反之,己方就会失败。如果存量比在战斗过程中不发生变化,双方最终就会战成平局。
1700146358
1700146359
3.兰彻斯特定律