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国科大高级人工智能10-强化学习(多臂赌博机、贝尔曼)
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文章目錄 多臂賭博機Multi-armed bandit(無狀態) 馬爾科夫決策過程MDP(markov decision process 1.動態規劃 蒙特卡羅方法——不知道環境完整模型情況下 2.1 on-policy蒙特卡羅 2.2 off-policy蒙特卡羅 時序差分方法
強化學習:Reinforcement learning 目標:學習從環境狀態到行為的映射,智能體選擇能夠獲得環境最大獎賞的行為,使得外部環境對學習系統在某種意義下的評價為最佳 區別: 特性——用于判斷某一問題可否用強化學習求解 挑戰 exploitation 開采(按原方法進行 exploration勘測(看有沒有其他方法,試一試 注重總體目標,階段性不重要 主體:智能體和環境 要素 反饋
多臂賭博機Multi-armed bandit(無狀態)
方法確定性?特性 貪心策略 At=argmaxaQt(a)(均值)At=argmax_aQ_t(a)(均值) A t = a r g m a x a ? Q t ? ( a ) ( 均 值 ) 確定性算法 ?\epsilon ? 貪心策略1??1-\epsilon 1 ? ? :貪心選擇;?\epsilon ? :隨機選擇確定性算法 - 樂觀初值法Optimistic initial values 每個行為的初值都高Q1高,?=0\epsilon=0 ? = 0 , 確定性算法 初始只探索,最終貪心 UCB AT=argmaxa(Qt(a)+clntNt(a)),Nt(a)?a被選擇的次數A_T=argmax_a(Q_t(a)+c\sqrt{\frac{lnt}{N_t(a)}}),N_t(a)-a被選擇的次數 A T ? = a r g m a x a ? ( Q t ? ( a ) + c N t ? ( a ) l n t ? ? ) , N t ? ( a ) ? a 被 選 擇 的 次 數 確定性算法 最初差,后比貪心好,收斂于貪心 梯度賭博機算法 $P(A_t=a)=\frac{e{H_t(a)}}{\Sigma_b=1 k e^{H_t(b)}}=\pi_t(a).優化目標 E(R_t)=\Sigma_b\pi_t(b)q(b) $ 不確定性算法 更新Ht
形式化
行為:搖哪個臂 獎勵:每次搖臂獲得的獎勵 第t輪采取的行為a的期望: q(a)=E(Rt|At=a) –貪心策略,每次都選期望最大的a,但不知道期望 只能通過經驗,對q(a)估計Qt(a),用貪心策略依據Qt(a) 優化目標:當前行為的期望收益
策略
利用:exploitation 按照貪心策略進行選擇,即選擇𝑄𝑡 𝑎 最大的行為𝑎 優點:最大化即時獎勵 缺點:由于𝑄𝑡 𝑎 只是對𝑞? 𝑎 的估計,估計的不確定性導致按照貪心策略選擇的行為不一定是使𝑞? 𝑎 最大的行為 探索:Exploration 選擇貪心策略之外的行為(non-greedy actions) 缺點:短期獎勵會比較低 優點:長期獎勵會比較高,通過探索可以找出獎勵更大的行為,供后續選擇 每次二選一,如何平衡? 貪心策略
At=argmaxaQt(a)A_t=argmax_aQ_t(a) A t ? = a r g m a x a ? Q t ? ( a ) 有多個最大,則隨即一個 ?\epsilon ? 貪心策略
1??1-\epsilon 1 ? ? :貪心選擇(exploitation?\epsilon ? :隨機選擇(exporation?\epsilon ? –取決于q(a)的方差,方差越大,取值越大eg 假設q(a)~N(0,1) 則At~N(0,1)正態分布 行為估值方法Qt(a)
Qt(a)=采取該行為所獲得的獎勵和采取該行為的次數=Σi=1t?1Ri1Ai=aΣi=1t?11Ai=a=行為a獎勵的均值Q_t(a)=\frac{采取該行為所獲得的獎勵和}{采取該行為的次數}=\frac{\Sigma_{i=1}^{t-1}R_i1_{A_i=a}}{\Sigma_{i=1}^{t-1}1_{A_i=a}}=行為a獎勵的均值 Q t ? ( a ) = 采 取 該 行 為 的 次 數 采 取 該 行 為 所 獲 得 的 獎 勵 和 ? = Σ i = 1 t ? 1 ? 1 A i ? = a ? Σ i = 1 t ? 1 ? R i ? 1 A i ? = a ? ? = 行 為 a 獎 勵 的 均 值 約定,分母=0,Qt(a)=0 分母無窮大,Qt(a)–>q(a) 增量實現 Qn(a)=R1+R2+...+Rn?1n?1Q_n(a)=\frac{R_1+R_2+...+R_{n-1}}{n-1} Q n ? ( a ) = n ? 1 R 1 ? + R 2 ? + . . . + R n ? 1 ? ? Qn+1(a)=R1+R2+...+Rn?1+Rnn=1n(Rn+Σi=1n?1Ri)=1n(Rn+(n?1)Qn(a))=Qn(a)?1n(Rn?Qn(a))Q_{n+1}(a)=\frac{R_1+R_2+...+R_{n-1}+R_{n}}{n}=\frac{1}{n}(R_n+\Sigma_{i=1}^{n-1}R_i)=\frac{1}{n}(R_n+(n-1)Q_n(a))=Q_n(a)-\frac{1}{n}(R_n-Q_n(a)) Q n + 1 ? ( a ) = n R 1 ? + R 2 ? + . . . + R n ? 1 ? + R n ? ? = n 1 ? ( R n ? + Σ i = 1 n ? 1 ? R i ? ) = n 1 ? ( R n ? + ( n ? 1 ) Q n ? ( a ) ) = Q n ? ( a ) ? n 1 ? ( R n ? ? Q n ? ( a ) ) 更新公式newEstimate<??oldEstimate+stepsize(target?oldEstimate)newEstimate<--oldEstimate+stepsize(target-oldEstimate) n e w E s t i m a t e < ? ? o l d E s t i m a t e + s t e p s i z e ( t a r g e t ? o l d E s t i m a t e ) 貪心策略的步長:1/n 更一般的:α或αt(a)\alpha或\alpha_t(a) α 或 α t ? ( a ) ——像SGD 非平穩狀態的更新公式 Qn+1(a)=Qn(a)?α(Rn?Qn(a))=αRn+(1?α)Qn(a)=αRn+(1?α)αRn?1+(1?α)2Qn?1=...=(1?α)nQ1+Σi=1n(1?α)n?iαRiQ_{n+1}(a)=Q_n(a)-\alpha(R_n-Q_n(a))=\alpha R_n+(1-\alpha)Q_n(a)=\alpha R_n+(1-\alpha)\alpha R_{n-1}+(1-\alpha)^2Q_{n-1}=...=(1-\alpha)^nQ_1+\Sigma_{i=1}^n(1-\alpha)^{n-i}\alpha R_i Q n + 1 ? ( a ) = Q n ? ( a ) ? α ( R n ? ? Q n ? ( a ) ) = α R n ? + ( 1 ? α ) Q n ? ( a ) = α R n ? + ( 1 ? α ) α R n ? 1 ? + ( 1 ? α ) 2 Q n ? 1 ? = . . . = ( 1 ? α ) n Q 1 ? + Σ i = 1 n ? ( 1 ? α ) n ? i α R i ? 這已經是個非平穩的了,時間越近,占比越大—帶權值平均 不收斂 收斂條件 Σn=1∞αn(a)=∞\Sigma_{n=1}^{\infty}\alpha_n(a)=\infty Σ n = 1 ∞ ? α n ? ( a ) = ∞ :步長足夠大,克服初值和隨機擾動的影響$ \Sigma_{n=1}{\infty}\alpha_n 2(a)<\infty$:步長最終會越來越小,小到保證收斂 平穩問題
q(a)是穩定的,不隨時間改變 隨著觀測樣本的增加,平均值估計方法最終收斂于q(a) 非平穩問題
q(a)是關于時間的函數(可能老化了) 關注最近的觀測樣本,時間遠的就不靠譜了
N(A)–A被選擇的次數
行為選擇策略
如何制定? 貪心策略:選擇當前估值最好的行為 𝜺貪心策略:以一定的概率隨機選擇非貪心行為(nongreedy actions),但是對于非貪心行為不加區分 ? 平衡exploitation和exploration,應對行為估值的不確定性 ? 關鍵:確定每個行為被選擇的概率 行為的初始估值 前述貪心策略中,每個行為的初始估值為0 每個行為的初始估值可以幫助我們引入先驗知識 初始估值還可以幫助我們平衡exploitation和exploration 樂觀初值法Optimistic initial values 每個行為都有個高的初值 優點:初期每個行為都有較大的機會被探索,快速探索 早期只探索,不開采,不關心歷史 早期差,但后期很快就跟上 缺點:可能一輩子都探索不完 ==Q1=5,𝜺=0的𝜺貪心 UCB(Upper-confidence-bound上確界 AT=argmaxa(Qt(a)+clntNt(a)),Nt(a)?a被選擇的次數A_T=argmax_a(Q_t(a)+c\sqrt{\frac{lnt}{N_t(a)}}),N_t(a)-a被選擇的次數 A T ? = a r g m a x a ? ( Q t ? ( a ) + c N t ? ( a ) l n t ? ? ) , N t ? ( a ) ? a 被 選 擇 的 次 數 選擇潛力大的:依據估值的置信上界選擇 第一項:當前估值高(接近貪心 第二項:不確定性要求高(被選擇的次數少–潛力大 c:控制探索的程度 比較: 最初幾輪差,之后會比𝜺貪心策略好 穩定 參數不好調 最終會收斂到貪婪策略 復雜,在多臂賭博機之外的情況用得少 梯度賭博機算法
不確定性算法(隨機策略 Ht(a):在t輪對行為a的偏好程度 選擇a的概率P(At=a)=eHt(a)Σb=1keHt(b)=πt(a)P(A_t=a)=\frac{e^{H_t(a)}}{\Sigma_b=1^k e^{H_t(b)}}=\pi_t(a) P ( A t ? = a ) = Σ b ? = 1 k e H t ? ( b ) e H t ? ( a ) ? = π t ? ( a ) 更新公式==SGD Ht+1(At)=Ht(At)+α(Rt?Rtˉ)(1?πt(At));Rtˉ=Qt(a)均值H_{t+1}(A_t)=H_t(A_t)+\alpha(R_t-\bar{R_t})(1-\pi_t(A_t));\bar{R_t}=Q_t(a)均值 H t + 1 ? ( A t ? ) = H t ? ( A t ? ) + α ( R t ? ? R t ? ˉ ? ) ( 1 ? π t ? ( A t ? ) ) ; R t ? ˉ ? = Q t ? ( a ) 均 值 對所有a!=A_t:Ht+1(a)=Ht(a)?α(Rt?Rtˉ)(πt(a))H_{t+1}(a)=H_t(a)-\alpha(R_t-\bar{R_t})(\pi_t(a)) H t + 1 ? ( a ) = H t ? ( a ) ? α ( R t ? ? R t ? ˉ ? ) ( π t ? ( a ) ) 優化目標:第t輪期望獎勵的大小 E(Rt)=Σbπt(b)q(b)E(R_t)=\Sigma_b\pi_t(b)q(b) E ( R t ? ) = Σ b ? π t ? ( b ) q ( b ) 多臂賭博機–強化學習的簡化
擴展
更一般的情形
馬爾科夫決策過程MDP(markov decision process
常用于建模序列化決策過程
行為
學習狀態到行為的映射–策略
多臂賭博機q(a) MDP學習𝑞(𝑠,𝑎) 或𝒗(𝑠) 智能體和環境按離散的時間交互
形式化記號
St∈SS_t \in S S t ? ∈ S 狀態At∈AA_t \in A A t ? ∈ A 行為(有的地方可以走,有的不可以走,有個取值范圍)采取At后,轉到狀態St+1,并獲得Rt+1 馬爾科夫決策過程得到的序列記為 S0,A0,R1,S1,A1,R2,S2,...S_0,A_0,R_1,S_1,A_1,R_2,S_2,... S 0 ? , A 0 ? , R 1 ? , S 1 ? , A 1 ? , R 2 ? , S 2 ? , . . . 有限馬爾科夫決策過程的建模
p(s′,r∣s,a)=P(St=s′,Rt=r∣st?1=s,At?1=a),[0,1]p(s',r|s,a)=P(St=s',Rt=r|s_{t-1}=s,A_{t-1}=a),[0,1] p ( s ′ , r ∣ s , a ) = P ( S t = s ′ , R t = r ∣ s t ? 1 ? = s , A t ? 1 ? = a ) , [ 0 , 1 ] 狀態轉移概率: p(s′∣s,a)=Σrp(s′,r∣s,a)p(s'|s,a)=\Sigma_r p(s',r|s,a) p ( s ′ ∣ s , a ) = Σ r ? p ( s ′ , r ∣ s , a ) 狀態-行為對的期望獎勵 r(s,a)=E(Rt∣st?1=s,At?1=a)=ΣrrΣs′p(s′,r∣s,a)r(s,a)=E(Rt|s_{t-1}=s,A_{t-1}=a)=\Sigma_r r\Sigma_s' p(s',r|s,a) r ( s , a ) = E ( R t ∣ s t ? 1 ? = s , A t ? 1 ? = a ) = Σ r ? r Σ s ′ ? p ( s ′ , r ∣ s , a ) 狀態-行為-下一個狀態,的獎勵 r(s,a,s′)=E(Rt∣St?1=s,At?1=a,St=s′)=Σrrp(s′,r∣s,a)p(s′∣s,a)r(s,a,s')=E(Rt|S_{t-1}=s,A_{t-1}=a,S_t=s')=\Sigma_r r \frac{p(s',r|s,a)}{p(s'|s,a)} r ( s , a , s ′ ) = E ( R t ∣ S t ? 1 ? = s , A t ? 1 ? = a , S t ? = s ′ ) = Σ r ? r p ( s ′ ∣ s , a ) p ( s ′ , r ∣ s , a ) ? 獎勵假設
目標:長期或最終的 獎勵:即時的 假設(強化學習的基礎) 累積獎勵
多幕式任務:Gt=Rt+1+Rt+2+Rt+3+...+RT(t<T,T?最終步,終止態)G_t=R_{t+1}+R_{t+2}+R_{t+3}+...+R_{T}(t<T,T-最終步,終止態) G t ? = R t + 1 ? + R t + 2 ? + R t + 3 ? + . . . + R T ? ( t < T , T ? 最 終 步 , 終 止 態 ) 連續式任務Gt=Rt+1+γRt+2+γ2Rt+3+...=Σk=0∞γkRt+k+1,0≤γ≤1(折扣率G_t=R_{t+1}+\gamma R_{t+2}+\gamma^2 R_{t+3}+...=\Sigma_{k=0}^{\infty}\gamma^kR_{t+k+1},0 \leq \gamma \leq 1(折扣率 G t ? = R t + 1 ? + γ R t + 2 ? + γ 2 R t + 3 ? + . . . = Σ k = 0 ∞ ? γ k R t + k + 1 ? , 0 ≤ γ ≤ 1 ( 折 扣 率 無終止 遞推:Gt=Σk=0∞γkRt+k+1=Rt+1+γGt+1G_t=\Sigma_{k=0}^{\infty}\gamma^kR_{t+k+1}=R_{t+1}+\gamma G_{t+1} G t ? = Σ k = 0 ∞ ? γ k R t + k + 1 ? = R t + 1 ? + γ G t + 1 ? 求和公式Gt=Σk=t+1Tγk?t?1Rk,T=∞和γ=1不能同時出現(不收斂)G_t=\Sigma_{k=t+1}^{T}\gamma^{k-t-1}R_{k},T=\infty和\gamma=1不能同時出現(不收斂) G t ? = Σ k = t + 1 T ? γ k ? t ? 1 R k ? , T = ∞ 和 γ = 1 不 能 同 時 出 現 ( 不 收 斂 ) 策略
狀態到行為的映射 隨機式策略π(a∣s)\pi(a|s) π ( a ∣ s ) 概率 確定式策略a=π(s)a=\pi(s) a = π ( s ) 狀態估值函數 vπ(s)=Eπ(Gt∣St=s)=Eπ(Σk=0∞γkRt+k+1∣St=s),foralls∈Sv_{\pi}(s)=E_\pi(G_t|S_t=s)=E_\pi(\Sigma_{k=0}^{\infty}\gamma^kR_{t+k+1}|S_t=s),for all s \in S v π ? ( s ) = E π ? ( G t ? ∣ S t ? = s ) = E π ? ( Σ k = 0 ∞ ? γ k R t + k + 1 ? ∣ S t ? = s ) , f o r a l l s ∈ S 行為估值函數 q(s,a)=Eπ(Gt∣St=s,At=a)=Eπ(Σk=0∞γkRt+k+1∣St=s,At=a)q(s,a)=E_\pi(G_t|S_t=s,A_t=a)=E_\pi(\Sigma_{k=0}^{\infty}\gamma^kR_{t+k+1}|S_t=s,A_t=a) q ( s , a ) = E π ? ( G t ? ∣ S t ? = s , A t ? = a ) = E π ? ( Σ k = 0 ∞ ? γ k R t + k + 1 ? ∣ S t ? = s , A t ? = a ) 貝爾曼方程(方程,可以聯立)
最優策略
策略π和π′兩個策略,對于所有s,vπ(s)≥vπ′(s)===π≥π′策略\pi和\pi'兩個策略,對于所有s,v_{\pi}(s)\geq v_{\pi'}(s)===\pi \geq \pi' 策 略 π 和 π ′ 兩 個 策 略 , 對 于 所 有 s , v π ? ( s ) ≥ v π ′ ? ( s ) = = = π ≥ π ′ v?(s)=maxπvπ(s),對應的最優策略可以有多個,但v一樣v*(s)=max_{\pi}v_{\pi}(s),對應的最優策略可以有多個,但v一樣 v ? ( s ) = m a x π ? v π ? ( s ) , 對 應 的 最 優 策 略 可 以 有 多 個 , 但 v 一 樣 行為估值函數:q?(s,a)=maxπqπ(s,a)q*(s,a)=max_\pi q_\pi(s,a) q ? ( s , a ) = m a x π ? q π ? ( s , a ) 貝爾曼最優方程(這是個賦值)
基于狀態估值函數的貝爾曼最優性方程
? 第一步:求解狀態估值函數的貝爾曼最優性方程得到最優策略對應的狀態估值函數 ? 第二步:根據狀態估值函數的貝爾曼最優性方程,進行一步搜索找到每個狀態下的最優行為 ? 注意:最優策略可以存在多個 ? 貝爾曼最優性方程的優勢,可以采用貪心局部搜索即可得到全局最優解 基于行為估值函數的貝爾曼最優性方程
局限性
需要知道環境模型 需要高昂的計算代價和內存(存放估值函數) 依賴于馬爾科夫性 實際應用
動態規劃(考) 蒙特卡羅方法 時序查分(用的多 參數化方法(用的多
1.動態規劃
策略估值 列方程(計算量大 迭代策略估值——尋找不動點 更新規則(期望更新)vk+1(s)=Σaπ(a∣s)Σs′r′p(s′,r∣s,a)(r+γvk(s′))v_{k+1}(s)=\Sigma_a\pi(a|s)\Sigma_{s'r'}p(s',r|s,a)(r+\gamma v_k(s')) v k + 1 ? ( s ) = Σ a ? π ( a ∣ s ) Σ s ′ r ′ ? p ( s ′ , r ∣ s , a ) ( r + γ v k ? ( s ′ ) ) 得到穩定點時,得到方程的解 兩種實現方式 同步更新:兩個數組存放,一個新數組,一個舊數組 異步更新:一個數組,同時放新的和舊的。(收斂快,收斂性有保證)
import numpy
as np
v
= np
. zeros
( ( 5 , 5 ) )
print ( v
)
[[0. 0. 0. 0. 0.][0. 0. 0. 0. 0.][0. 0. 0. 0. 0.][0. 0. 0. 0. 0.][0. 0. 0. 0. 0.]]
action
= np
. array
( [ [ - 1 , 0 ] , [ 1 , 0 ] , [ 0 , - 1 ] , [ 0 , 1 ] ] )
for k
in range ( 100 ) : for i
in range ( 0 , 5 ) : for j
in range ( 5 ) : s
= np
. array
( [ i
, j
] ) v_a
= 0.0 for a
in action
: s_1
= s
+ a
if ( s_1
[ 0 ] < 0 or s_1
[ 0 ] > 4 or s_1
[ 1 ] < 0 or s_1
[ 1 ] > 4 ) : s_1
= sv_a
+= 1 / 4 * ( - 1 . + 0.9 * v
[ s_1
[ 0 ] , s_1
[ 1 ] ] ) elif ( np
. equal
( [ 0 , 1 ] , s
) . all ( ) ) : s_1
= np
. array
( [ 4 , 1 ] ) v_a
+= 1 / 4 * ( 10 . + 0.9 * v
[ s_1
[ 0 ] , s_1
[ 1 ] ] ) elif ( np
. equal
( [ 0 , 3 ] , s
) . all ( ) ) : s_1
= np
. array
( [ 2 , 3 ] ) v_a
+= 1 / 4 * ( 5 . + 0.9 * v
[ s_1
[ 0 ] , s_1
[ 1 ] ] ) else : v_a
+= 1 / 4 * 0.9 * v
[ s_1
[ 0 ] , s_1
[ 1 ] ] v
[ i
, j
] = v_a
print ( v
)
[[-0.5 7.25 1.38125 3.5 0.2875 ][-0.3625 1.5496875 0.65946094 0.93587871 0.02526021][-0.3315625 0.27407813 0.21004629 0.25783312 -0.186304 ][-0.32460156 -0.01136777 0.04470267 0.06807055 -0.27660253][-0.57303535 -0.3814907 -0.32577731 -0.30798402 -0.63153197]]
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[[ 2.94971666 8.13621022 3.9846756 4.70742697 1.15286906][ 1.29637354 2.70460752 1.99243437 1.63178854 0.33288737][-0.07796575 0.59543738 0.53417167 0.2196251 -0.52695392][-1.04928627 -0.51444658 -0.43342029 -0.66291355 -1.25648341][-1.91072171 -1.39918114 -1.28314324 -1.4760222 -2.02692678]]
[[ 2.94970385 8.13620003 3.98466582 4.70741801 1.15285979][ 1.29636181 2.70459756 1.99242531 1.63178005 0.33287899][-0.07797688 0.5954278 0.53416303 0.21961701 -0.5269618 ][-1.04929708 -0.51445591 -0.43342868 -0.66292139 -1.25649101][-1.91073237 -1.39919035 -1.28315151 -1.47602992 -2.02693426]]
[[ 2.94969314 8.13619152 3.98465765 4.70741054 1.15285205][ 1.29635202 2.70458924 1.99241774 1.63177296 0.33287199][-0.07798618 0.59541979 0.53415582 0.21961026 -0.52696838][-1.0493061 -0.5144637 -0.43343567 -0.66292793 -1.25649736][-1.91074127 -1.39919803 -1.28315841 -1.47603637 -2.02694051]]
[[ 2.94968421 8.13618442 3.98465083 4.7074043 1.15284559][ 1.29634384 2.7045823 1.99241143 1.63176705 0.33286616][-0.07799395 0.59541311 0.5341498 0.21960462 -0.52697386][-1.04931363 -0.5144702 -0.43344151 -0.66293339 -1.25650265][-1.91074869 -1.39920445 -1.28316417 -1.47604175 -2.02694572]]
[[ 2.94967675 8.13617849 3.98464513 4.70739909 1.15284019][ 1.29633701 2.70457651 1.99240616 1.63176211 0.33286128][-0.07800043 0.59540753 0.53414478 0.21959992 -0.52697845][-1.04931991 -0.51447563 -0.43344639 -0.66293795 -1.25650707][-1.91075489 -1.39920981 -1.28316897 -1.47604624 -2.02695007]]
[[ 2.94967053 8.13617354 3.98464038 4.70739474 1.15283569][ 1.29633132 2.70457167 1.99240176 1.63175798 0.33285722][-0.07800584 0.59540287 0.53414059 0.21959599 -0.52698227][-1.04932516 -0.51448016 -0.43345046 -0.66294175 -1.25651076][-1.91076007 -1.39921428 -1.28317299 -1.47604998 -2.0269537 ]]
[[ 2.94966533 8.13616941 3.98463642 4.70739111 1.15283193][ 1.29632656 2.70456764 1.99239809 1.63175454 0.33285382][-0.07801035 0.59539898 0.53413709 0.21959271 -0.52698546][-1.04932954 -0.51448394 -0.43345386 -0.66294493 -1.25651384][-1.91076439 -1.39921801 -1.28317634 -1.47605311 -2.02695673]]
[[ 2.94966099 8.13616596 3.9846331 4.70738808 1.1528288 ][ 1.29632259 2.70456426 1.99239502 1.63175167 0.33285099][-0.07801412 0.59539574 0.53413416 0.21958997 -0.52698813][-1.0493332 -0.5144871 -0.4334567 -0.66294758 -1.25651641][-1.910768 -1.39922113 -1.28317914 -1.47605572 -2.02695926]]
[[ 2.94965737 8.13616308 3.98463034 4.70738555 1.15282618][ 1.29631927 2.70456145 1.99239247 1.63174927 0.33284862][-0.07801727 0.59539303 0.53413172 0.21958769 -0.52699035][-1.04933625 -0.51448973 -0.43345906 -0.66294979 -1.25651856][-1.91077101 -1.39922373 -1.28318147 -1.4760579 -2.02696137]]
[[ 2.94965435 8.13616068 3.98462803 4.70738344 1.15282399][ 1.2963165 2.7045591 1.99239033 1.63174727 0.33284664][-0.0780199 0.59539077 0.53412969 0.21958578 -0.52699221][-1.0493388 -0.51449193 -0.43346104 -0.66295164 -1.25652035][-1.91077352 -1.3992259 -1.28318342 -1.47605972 -2.02696313]]
[[ 2.94965182 8.13615867 3.98462611 4.70738168 1.15282217][ 1.29631419 2.70455714 1.99238855 1.6317456 0.332845 ][-0.07802209 0.59538888 0.53412799 0.21958419 -0.52699376][-1.04934093 -0.51449377 -0.43346269 -0.66295318 -1.25652184][-1.91077562 -1.39922771 -1.28318505 -1.47606124 -2.0269646 ]]
[[ 2.94964971 8.136157 3.9846245 4.70738021 1.15282065][ 1.29631227 2.70455551 1.99238706 1.6317442 0.33284362][-0.07802392 0.59538731 0.53412657 0.21958286 -0.52699505][-1.0493427 -0.5144953 -0.43346407 -0.66295447 -1.25652309][-1.91077737 -1.39922922 -1.28318641 -1.47606251 -2.02696583]]
[[ 2.94964796 8.1361556 3.98462316 4.70737898 1.15281938][ 1.29631066 2.70455414 1.99238582 1.63174304 0.33284247][-0.07802545 0.59538599 0.53412539 0.21958175 -0.52699613][-1.04934419 -0.51449658 -0.43346522 -0.66295554 -1.25652413][-1.91077883 -1.39923049 -1.28318754 -1.47606357 -2.02696686]]
[[ 2.94964649 8.13615443 3.98462204 4.70737795 1.15281831][ 1.29630931 2.704553 1.99238478 1.63174207 0.33284151][-0.07802673 0.59538489 0.5341244 0.21958083 -0.52699703][-1.04934542 -0.51449765 -0.43346618 -0.66295644 -1.256525 ][-1.91078006 -1.39923154 -1.28318849 -1.47606445 -2.02696771]]
[[ 2.94964526 8.13615346 3.9846211 4.7073771 1.15281743][ 1.29630819 2.70455205 1.99238391 1.63174125 0.33284071][-0.07802779 0.59538398 0.53412357 0.21958005 -0.52699779][-1.04934646 -0.51449854 -0.43346698 -0.66295719 -1.25652573][-1.91078107 -1.39923242 -1.28318928 -1.47606519 -2.02696843]]
[[ 2.94964424 8.13615264 3.98462032 4.70737638 1.15281669][ 1.29630725 2.70455125 1.99238319 1.63174058 0.33284004][-0.07802868 0.59538321 0.53412288 0.21957941 -0.52699841][-1.04934732 -0.51449929 -0.43346765 -0.66295781 -1.25652634][-1.91078192 -1.39923315 -1.28318994 -1.47606581 -2.02696903]]
[[ 2.94964338 8.13615197 3.98461967 4.70737579 1.15281607][ 1.29630647 2.70455059 1.99238259 1.63174001 0.33283949][-0.07802942 0.59538257 0.53412231 0.21957887 -0.52699894][-1.04934804 -0.51449991 -0.4334682 -0.66295833 -1.25652684][-1.91078264 -1.39923377 -1.28319049 -1.47606632 -2.02696952]]
[[ 2.94964267 8.1361514 3.98461912 4.70737529 1.15281556][ 1.29630582 2.70455003 1.99238208 1.63173954 0.33283902][-0.07803004 0.59538204 0.53412183 0.21957842 -0.52699938][-1.04934864 -0.51450043 -0.43346867 -0.66295877 -1.25652726][-1.91078323 -1.39923428 -1.28319095 -1.47606675 -2.02696994]]
[[ 2.94964208 8.13615093 3.98461867 4.70737487 1.15281513][ 1.29630528 2.70454957 1.99238166 1.63173914 0.33283863][-0.07803056 0.59538159 0.53412143 0.21957805 -0.52699974][-1.04934914 -0.51450086 -0.43346906 -0.66295913 -1.25652762][-1.91078372 -1.39923471 -1.28319133 -1.47606711 -2.02697029]]
[[ 2.94964158 8.13615053 3.98461829 4.70737453 1.15281477][ 1.29630482 2.70454919 1.99238131 1.63173882 0.33283831][-0.07803099 0.59538122 0.53412109 0.21957773 -0.52700005][-1.04934956 -0.51450122 -0.43346938 -0.66295943 -1.25652791][-1.91078414 -1.39923506 -1.28319165 -1.47606741 -2.02697058]]
[[ 2.94964116 8.1361502 3.98461797 4.70737424 1.15281447][ 1.29630444 2.70454886 1.99238102 1.63173854 0.33283804][-0.07803135 0.59538091 0.53412081 0.21957747 -0.5270003 ][-1.04934991 -0.51450153 -0.43346965 -0.66295969 -1.25652816][-1.91078448 -1.39923536 -1.28319192 -1.47606766 -2.02697082]]
[[ 2.94964082 8.13614993 3.98461771 4.707374 1.15281422][ 1.29630412 2.7045486 1.99238077 1.63173831 0.33283781][-0.07803165 0.59538065 0.53412058 0.21957725 -0.52700051][-1.0493502 -0.51450178 -0.43346988 -0.6629599 -1.25652836][-1.91078477 -1.39923561 -1.28319214 -1.47606787 -2.02697102]]
[[ 2.94964053 8.1361497 3.98461749 4.7073738 1.15281401][ 1.29630386 2.70454837 1.99238057 1.63173812 0.33283762][-0.0780319 0.59538044 0.53412039 0.21957707 -0.52700069][-1.04935045 -0.51450199 -0.43347007 -0.66296008 -1.25652853][-1.91078501 -1.39923582 -1.28319233 -1.47606804 -2.02697119]]
[[ 2.94964029 8.1361495 3.98461731 4.70737363 1.15281383][ 1.29630364 2.70454818 1.9923804 1.63173796 0.33283746][-0.07803211 0.59538026 0.53412022 0.21957692 -0.52700084][-1.04935065 -0.51450216 -0.43347023 -0.66296022 -1.25652868][-1.91078521 -1.39923599 -1.28319248 -1.47606818 -2.02697133]]
[[ 2.94964009 8.13614934 3.98461715 4.70737349 1.15281369][ 1.29630345 2.70454803 1.99238026 1.63173783 0.33283733][-0.07803229 0.5953801 0.53412009 0.21957679 -0.52700096][-1.04935082 -0.51450231 -0.43347036 -0.66296035 -1.2565288 ][-1.91078538 -1.39923614 -1.28319261 -1.47606831 -2.02697145]]
[[ 2.94963992 8.13614921 3.98461702 4.70737337 1.15281357][ 1.2963033 2.7045479 1.99238014 1.63173772 0.33283722][-0.07803243 0.59537998 0.53411997 0.21957669 -0.52700107][-1.04935096 -0.51450243 -0.43347047 -0.66296045 -1.2565289 ][-1.91078552 -1.39923626 -1.28319272 -1.47606841 -2.02697154]]
[[ 2.94963978 8.1361491 3.98461692 4.70737327 1.15281347][ 1.29630317 2.70454779 1.99238004 1.63173762 0.33283713][-0.07803255 0.59537987 0.53411988 0.2195766 -0.52700115][-1.04935108 -0.51450253 -0.43347056 -0.66296053 -1.25652898][-1.91078563 -1.39923636 -1.28319281 -1.47606849 -2.02697163]]
[[ 2.94963966 8.13614901 3.98461683 4.70737319 1.15281338][ 1.29630307 2.7045477 1.99237996 1.63173755 0.33283705][-0.07803266 0.59537979 0.5341198 0.21957652 -0.52700122][-1.04935118 -0.51450262 -0.43347064 -0.66296061 -1.25652905][-1.91078573 -1.39923644 -1.28319289 -1.47606856 -2.02697169]]
[[ 2.94963956 8.13614893 3.98461675 4.70737312 1.15281331][ 1.29630298 2.70454762 1.99237989 1.63173748 0.33283699][-0.07803274 0.59537971 0.53411973 0.21957646 -0.52700128][-1.04935126 -0.51450269 -0.4334707 -0.66296067 -1.25652911][-1.91078581 -1.39923651 -1.28319295 -1.47606862 -2.02697175]]
[[ 2.94963948 8.13614886 3.98461669 4.70737306 1.15281325][ 1.2963029 2.70454756 1.99237983 1.63173743 0.33283694][-0.07803281 0.59537965 0.53411968 0.21957641 -0.52700133][-1.04935133 -0.51450275 -0.43347075 -0.66296072 -1.25652915][-1.91078588 -1.39923657 -1.283193 -1.47606867 -2.0269718 ]]
[[ 2.94963941 8.13614881 3.98461664 4.70737302 1.1528132 ][ 1.29630284 2.7045475 1.99237978 1.63173738 0.33283689][-0.07803287 0.5953796 0.53411963 0.21957637 -0.52700138][-1.04935139 -0.5145028 -0.4334708 -0.66296076 -1.25652919][-1.91078594 -1.39923662 -1.28319304 -1.47606871 -2.02697184]]
[[ 2.94963936 8.13614876 3.9846166 4.70737298 1.15281316][ 1.29630279 2.70454746 1.99237974 1.63173734 0.33283685][-0.07803292 0.59537956 0.5341196 0.21957633 -0.52700141][-1.04935143 -0.51450284 -0.43347084 -0.66296079 -1.25652923][-1.91078598 -1.39923666 -1.28319308 -1.47606874 -2.02697187]]
[[ 2.94963931 8.13614873 3.98461656 4.70737294 1.15281313][ 1.29630274 2.70454742 1.99237971 1.63173731 0.33283682][-0.07803296 0.59537952 0.53411956 0.2195763 -0.52700144][-1.04935147 -0.51450288 -0.43347087 -0.66296082 -1.25652926][-1.91078602 -1.39923669 -1.28319311 -1.47606877 -2.0269719 ]]
[[ 2.94963927 8.1361487 3.98461653 4.70737292 1.1528131 ][ 1.29630271 2.70454739 1.99237968 1.63173729 0.3328368 ][-0.078033 0.59537949 0.53411954 0.21957628 -0.52700147][-1.04935151 -0.5145029 -0.43347089 -0.66296085 -1.25652928][-1.91078606 -1.39923672 -1.28319314 -1.4760688 -2.02697192]]
[[ 2.94963924 8.13614867 3.9846165 4.70737289 1.15281307][ 1.29630268 2.70454737 1.99237966 1.63173727 0.33283678][-0.07803303 0.59537947 0.53411951 0.21957626 -0.52700149][-1.04935154 -0.51450293 -0.43347091 -0.66296087 -1.2565293 ][-1.91078608 -1.39923675 -1.28319316 -1.47606882 -2.02697194]]
[[ 2.94963921 8.13614865 3.98461648 4.70737287 1.15281305][ 1.29630265 2.70454735 1.99237964 1.63173725 0.33283676][-0.07803305 0.59537945 0.5341195 0.21957624 -0.5270015 ][-1.04935156 -0.51450295 -0.43347093 -0.66296088 -1.25652932][-1.91078611 -1.39923677 -1.28319318 -1.47606883 -2.02697196]]
[[ 2.94963919 8.13614863 3.98461646 4.70737286 1.15281304][ 1.29630263 2.70454733 1.99237962 1.63173723 0.33283674][-0.07803307 0.59537943 0.53411948 0.21957622 -0.52700152][-1.04935158 -0.51450297 -0.43347095 -0.6629609 -1.25652933][-1.91078613 -1.39923678 -1.28319319 -1.47606885 -2.02697197]]
[[ 2.94963917 8.13614861 3.98461645 4.70737284 1.15281302][ 1.29630261 2.70454731 1.99237961 1.63173722 0.33283673][-0.07803309 0.59537942 0.53411947 0.21957621 -0.52700153][-1.04935159 -0.51450298 -0.43347096 -0.66296091 -1.25652934][-1.91078614 -1.3992368 -1.2831932 -1.47606886 -2.02697198]]
[[ 2.94963915 8.1361486 3.98461644 4.70737283 1.15281301][ 1.2963026 2.7045473 1.9923796 1.63173721 0.33283672][-0.0780331 0.5953794 0.53411946 0.2195762 -0.52700154][-1.04935161 -0.51450299 -0.43347097 -0.66296092 -1.25652935][-1.91078615 -1.39923681 -1.28319321 -1.47606887 -2.02697199]]
[[ 2.94963914 8.13614859 3.98461643 4.70737282 1.152813 ][ 1.29630259 2.70454729 1.99237959 1.6317372 0.33283671][-0.07803311 0.59537939 0.53411945 0.21957619 -0.52700155][-1.04935162 -0.514503 -0.43347098 -0.66296093 -1.25652936][-1.91078617 -1.39923682 -1.28319322 -1.47606888 -2.026972 ]]
[[ 2.94963913 8.13614858 3.98461642 4.70737282 1.15281299][ 1.29630258 2.70454728 1.99237958 1.63173719 0.3328367 ][-0.07803312 0.59537939 0.53411944 0.21957619 -0.52700155][-1.04935163 -0.51450301 -0.43347099 -0.66296093 -1.25652936][-1.91078618 -1.39923683 -1.28319323 -1.47606888 -2.02697201]]
[[ 2.94963912 8.13614857 3.98461641 4.70737281 1.15281299][ 1.29630257 2.70454727 1.99237957 1.63173719 0.3328367 ][-0.07803313 0.59537938 0.53411943 0.21957618 -0.52700156][-1.04935164 -0.51450302 -0.43347099 -0.66296094 -1.25652937][-1.91078618 -1.39923683 -1.28319324 -1.47606889 -2.02697201]]
[[ 2.94963911 8.13614857 3.98461641 4.7073728 1.15281298][ 1.29630256 2.70454727 1.99237957 1.63173718 0.33283669][-0.07803314 0.59537937 0.53411943 0.21957618 -0.52700156][-1.04935164 -0.51450302 -0.433471 -0.66296094 -1.25652937][-1.91078619 -1.39923684 -1.28319324 -1.47606889 -2.02697202]]
[[ 2.9496391 8.13614856 3.9846164 4.7073728 1.15281298][ 1.29630255 2.70454726 1.99237956 1.63173718 0.33283669][-0.07803314 0.59537937 0.53411942 0.21957617 -0.52700157][-1.04935165 -0.51450303 -0.433471 -0.66296095 -1.25652938][-1.91078619 -1.39923684 -1.28319325 -1.4760689 -2.02697202]]
[[ 2.9496391 8.13614856 3.9846164 4.7073728 1.15281297][ 1.29630255 2.70454726 1.99237956 1.63173717 0.33283669][-0.07803315 0.59537936 0.53411942 0.21957617 -0.52700157][-1.04935165 -0.51450303 -0.43347101 -0.66296095 -1.25652938][-1.9107862 -1.39923685 -1.28319325 -1.4760689 -2.02697202]]
[[ 2.94963909 8.13614855 3.98461639 4.70737279 1.15281297][ 1.29630254 2.70454725 1.99237955 1.63173717 0.33283668][-0.07803315 0.59537936 0.53411942 0.21957616 -0.52700157][-1.04935166 -0.51450303 -0.43347101 -0.66296095 -1.25652938][-1.9107862 -1.39923685 -1.28319325 -1.4760689 -2.02697203]]
[[ 2.94963909 8.13614855 3.98461639 4.70737279 1.15281297][ 1.29630254 2.70454725 1.99237955 1.63173717 0.33283668][-0.07803315 0.59537936 0.53411941 0.21957616 -0.52700158][-1.04935166 -0.51450304 -0.43347101 -0.66296096 -1.25652939][-1.91078621 -1.39923685 -1.28319325 -1.47606891 -2.02697203]]
[[ 2.94963909 8.13614855 3.98461639 4.70737279 1.15281297][ 1.29630254 2.70454725 1.99237955 1.63173717 0.33283668][-0.07803316 0.59537936 0.53411941 0.21957616 -0.52700158][-1.04935166 -0.51450304 -0.43347101 -0.66296096 -1.25652939][-1.91078621 -1.39923685 -1.28319326 -1.47606891 -2.02697203]]
貪心策略–找Gt最大的下一步s’–v最大
蒙特卡羅方法——不知道環境完整模型情況下
從真實或模擬的經驗中計算狀態(行動)估值函數
不需要知道完整的模型
采樣
回到原狀態的就不要了
基于蒙特卡羅的方法的策略迭代
僅有狀態估值無法得出策略 蒙特卡羅得到qπ(s,a)蒙特卡羅得到q_\pi(s,a) 蒙 特 卡 羅 得 到 q π ? ( s , a ) ,貪心得到策略 優點:不同狀態的估值在計算時獨立(不依賴于自舉)
缺點:部分狀態行為再蒙特卡羅模擬中不出現
解決方案:exploring start :每個“狀態-行為”對都以一定的概率作為模擬的起始點(殘局)
不要exploring start了 其他方法——平衡開采和探索 on-policy 每個狀態都進行探索:eg:𝜺貪心 1??+?A(s)貪心;以?A(s)選擇費貪心1-\epsilon+\frac{\epsilon}{A(s)}貪心;以\frac{\epsilon}{A(s)}選擇費貪心 1 ? ? + A ( s ) ? ? 貪 心 ; 以 A ( s ) ? ? 選 擇 費 貪 心 缺點:最終得到的最優策略僅僅是?\epsilon ? 最優策略(與最優解還有個小誤差) off-policy
2.1 on-policy蒙特卡羅
2.2 off-policy蒙特卡羅
時序差分方法
蒙特卡洛一定要模擬到最后嗎 非平穩模擬 時序差分方法是強化學習中最核心的策略學習方法 TD和蒙特卡洛方法的聯系和區別 聯系:都是從經驗中學習 非平穩情形下的蒙特卡洛方法是TD的特例 區別:蒙特卡洛方法需要episode完整的信息,TD只需要episode的部分信息 TD比蒙特卡羅快吧 TD和動態規劃方法的聯系和區別 聯系:TD和動態規劃方法都采用自舉的方法 區別:動態規劃方法依賴于完整的環境模型進行估計,TD依賴于經驗進行估計 從一個猜測學習一個猜測 收斂 在線的從經驗中進行策略學習 直接學習行為估值函數完成策略學習 適用于狀態和行為空間比較小的問題
總結
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