BP平分角ABC,CP平分角ACE,

∵∠ACD=∠A+∠ABC,CP平分∠ACD∴∠PCD=∠ACD/2=（∠A+∠ABC）/2∵BP平分∠ABC∴∠PBC=∠ABC/2∴∠PCD=∠P+∠PBC=∠P+∠ABC/2∴∠P+∠ABC/2

作∠PCB的平分线交PB于E.∵∠ABE＝∠CBE＝∠ABC/2、∠ACE＝∠BCE＝∠ACB/2,∴∠BAE＝∠CAE＝∠BAC/2.∵∠ACD＝∠ACP＋∠PCD＝2∠PCD、∠ABC＝∠ABP＋

∠BPC=115度

如下：∠ACD=∠ABC+∠A=∠ABC+70°∠PCD=1/2*∠ACD=1/2*∠ABC+35°∠PCD=∠PBC+∠P∠PBC+∠P=1/2*∠ABC+35°∠P=35°

/>∵∠ACD＝∠A+∠ABC,CP平分∠ACD∴∠PCD＝∠ACD/2＝（∠A+∠ABC）/2∵BP平分∠ABC∴∠PBC＝∠ABC/2∴∠PCD＝∠P+∠PBC＝∠P+∠ABC/2∴∠P+∠ABC

证明：过点P作PM⊥AB于M,PN⊥AC于N,PG⊥BC于G∵PM⊥AB,PG⊥BC,BP平分∠CBD∴PM＝PG∵PN⊥AC,PG⊥BC,CP平分∠BCE∴PN＝PG∴PM＝PN∴AP平分∠BAC

证明：过P作三边AB、AC、BC的垂线段PD、PE、PF，∵BP是△ABC的外角平分线，PD⊥AD，PF⊥BC，∴PD=PF（角平分线上的点到角两边的距离相等），∵点P在∠BAC的角平分线上，PD⊥A

∠PCD为△PBC外角,故①∠PCD=∠PBC+∠BPC∠ACD为△ABC外角,故②∠ACD=∠ABC+∠BAC将①式乘以2得2∠PCD=2∠PBC+2∠BPC...③其中2∠PCD=∠ACD.④2∠

角BPC=180°-角PBC-角PCB=180°-1/2(角ABC+角DCB)=180°-1/2(360°-角A-角D)=180°-180°+1/2(角A+角D)所以:2角BPC=角A+角D

∠A=50,所以∠ABC+∠ACB=130∠ACP=1/2（180-∠ACB）=90-∠ACB/2∠P=180-∠PBC-（∠ACB+∠ACP）因为∠PBC=∠ABC/2所以∠P=180-∠ABC/2

关系：∠BPC=90°+1/2∠A证明：在ABC中,∠ABC和∠ACB的平分线相交于点P所以∠BPC=180°-（∠PBC+∠PCB)=180°-（1/2∠ABC+1/2∠ACB)=180°-1/2(

在BC延长线上取点E∵∠A+∠ABC+∠ACB＝180∴∠ABC+∠ACB＝180-∠A∵∠ACE＝180-∠ACB,CP平分∠ACE∴∠PCE＝∠ACE/2＝（180-∠ACB）/2＝90-∠ACB

证明：作PM⊥AB于点M,PN⊥AC于点N,PO⊥BC于点O∵BP平分∠DBC∴PM=PO∵CP平分∠BCE∴PN=PO∴PM=PN∴点在∠A的平分线上

∠ACM=∠A+ABC∠PCM=∠P+∠PBC已知∠ABC=2∠PBC∠ACM=2∠PCM则2∠PCM=∠A+ABC=∠A+2∠PBC=∠A+2∠PCM-2∠P可求∠A=∠P再问：∠A=∠P？

已知,点P在△ABC的外角平分线BP上,可得：点P到直线AB和直线BC的距离相等；已知,点P在△ABC的外角平分线CP上,可得：点P到直线AC和直线BC的距离相等；所以,点P到直线AB和直线AC的距离

∵∠A=86°,∴∠ABC+∠ACB=94°又∵BP平分∠ABC,CP平分∠ACB∴∠PBC=1/2∠ABC,∠PCB=1/2∠ACB.∴∠PBC+∠PCB=1/1(∠ABC+∠ACB）=47°.∴∠

∵在△ABC中，∠A=50°，∴∠ABC+∠ACB=180°-50°=130°．∵BP平分∠ABC，CP平分∠ACB，∴∠PBC+∠PCB=12（∠ABC+∠ACB）=12×130°=65°，∴∠BP

如果我没画错的话由题意得∠MBP=∠CBP,∠BCP=∠NCP,∠BAP=∠CAP=a/2∴∠BPC=360°-∠ABP-∠BAC-∠ACP=360°-（180°-∠PBM）-a-（180°-∠PCN

在△BCP中,∵∠PBC+∠P+∠PCB=180°∴∠P=180°-1/2∠ABC-（∠PCA+∠ACB)=180°-1/2∠ABC-(1/2∠ACD+∠ACB)=180°-1/2∠ABC-[1/2(

根据题意，∠PCD=∠P+∠PBC，∠ACD=∠A+∠ABC，∵BP平分∠ABC，CP平分∠ABC的外角∠ACD，∴∠ABC=2∠PBC，∠ACD=2∠PCD，∴∠A+∠ABC=2（∠P+∠PBC），