青青草原综合久久大伊人导航_色综合久久天天综合_日日噜噜夜夜狠狠久久丁香五月_热久久这里只有精品

C++ Programmer's Cookbook

{C++ 基礎} {C++ 高級} {C#界面,C++核心算法} {設計模式} {C#基礎}

模式設計c#--創建型--Singleton

名稱 Singleton
結構 o_singleton.bmp
意圖 保證一個類僅有一個實例,并提供一個訪問它的全局訪問點。
適用性
  • 當類只能有一個實例而且客戶可以從一個眾所周知的訪問點訪問它時。
  • 當這個唯一實例應該是通過子類化可擴展的,并且客戶應該無需更改代碼就能使用一個擴展的實例時。


Code Example
namespace?Singleton_DesignPattern
{
????
using?System;

????
class?Singleton?
????
{
????????
private?static?Singleton?_instance;
????????
????????
public?static?Singleton?Instance()
????????
{
????????????
if?(_instance?==?null)
????????????????_instance?
=?new?Singleton();
????????????
return?_instance;
????????}

????????
protected?Singleton(){}

????????
//?Just?to?prove?only?a?single?instance?exists
????????private?int?x?=?0;
????????
public?void?SetX(int?newVal)?{x?=?newVal;}
????????
public?int?GetX(){return?x;}????????
????}


????
///?<summary>
????
///????Summary?description?for?Client.
????
///?</summary>

????public?class?Client
????
{
????????
public?static?int?Main(string[]?args)
????????
{
????????????
int?val;
????????????
//?can't?call?new,?because?constructor?is?protected
????????????Singleton?FirstSingleton?=?Singleton.Instance();?
????????????Singleton?SecondSingleton?
=?Singleton.Instance();

????????????
//?Now?we?have?two?variables,?but?both?should?refer?to?the?same?object
????????????
//?Let's?prove?this,?by?setting?a?value?using?one?variable,?and?
????????????
//?(hopefully!)?retrieving?the?same?value?using?the?second?variable
????????????FirstSingleton.SetX(4);
????????????Console.WriteLine(
"Using?first?variable?for?singleton,?set?x?to?4");????????

????????????val?
=?SecondSingleton.GetX();
????????????Console.WriteLine(
"Using?second?variable?for?singleton,?value?retrieved?=?{0}",?val);????????
????????????
return?0;
????????}

????}

}

http://www.yoda.arachsys.com/csharp/singleton.html

Implementing the Singleton Pattern in C#

The singleton pattern is one of the best-known patterns in software engineering. Essentially, a singleton is a class which only allows a single instance of itself to be created, and usually gives simple access to that instance. Most commonly, singletons don't allow any parameters to be specified when creating the instance - as otherwise a second request for an instance but with a different parameter could be problematic! (If the same instance should be accessed for all requests with the same parameter, the factory pattern is more appropriate.) This article deals only with the situation where no parameters are required. Typically a requirement of singletons is that they are created lazily - i.e. that the instance isn't created until it is first needed.

There are various different ways of implementing the singleton pattern in C#. I shall present them here in reverse order of elegance, starting with the most commonly seen, which is not thread-safe, and working up to a fully lazily-loaded, thread-safe, simple and highly performant version. Note that in the code here, I omit the private modifier, as it is the default for class members. In many other languages such as Java, there is a different default, and private should be used.

All these implementations share four common characteristics, however:

  • A single constructor, which is private and parameterless. This prevents other classes from instantiating it (which would be a violation of the pattern). Note that it also prevents subclassing - if a singleton can be subclassed once, it can be subclassed twice, and if each of those subclasses can create an instance, the pattern is violated. The factory pattern can be used if you need a single instance of a base type, but the exact type isn't known until runtime.
  • The class is sealed. This is unnecessary, strictly speaking, due to the above point, but may help the JIT to optimise things more.
  • A static variable which holds a reference to the single created instance, if any.
  • A public static means of getting the reference to the single created instance, creating one if necessary.

Note that all of these implementations also use a public static property Instance as the means of accessing the instance. In all cases, the property could easily be converted to a method, with no impact on thread-safety or performance.

First version - not thread-safe

//?Bad?code!?Do?not?use!
public?sealed?class?Singleton
{
????
static?Singleton?instance=null;

????Singleton()
????
{
????}


????
public?static?Singleton?Instance
????
{
????????
get
????????
{
????????????
if?(instance==null)
????????????
{
????????????????instance?
=?new?Singleton();
????????????}

????????????
return?instance;
????????}

????}

}


As hinted at before, the above is not thread-safe. Two different threads could both have evaluated the test if (instance==null) and found it to be true, then both create instances, which violates the singleton pattern. Note that in fact the instance may already have been created before the expression is evaluated, but the memory model doesn't guarantee that the new value of instance will be seen by other threads unless suitable memory barriers have been passed.

Second version - simple thread-safety

publicsealedclass?Singleton
{
????
static?Singleton?instance=null;
????staticreadonlyobject?padlock?
=?newobject();

????Singleton()
????
{
????}


????publicstatic?Singleton?Instance
????
{
????????
get
????????
{
????????????
lock?(padlock)
????????????
{
????????????????
if?(instance==null)
????????????????
{
????????????????????instance?
=?new?Singleton();
????????????????}

????????????????
return?instance;
????????????}

????????}

????}

}


This implementation is thread-safe. The thread takes out a lock on a shared object, and then checks whether or not the instance has been created before creating the instance. This takes care of the memory barrier issue (as locking makes sure that all reads occur logically after the lock acquire, and unlocking makes sure that all writes occur logically before the lock release) and ensures that only one thread will create an instance (as only one thread can be in that part of the code at a time - by the time the second thread enters it,the first thread will have created the instance, so the expression will evaluate to false). Unfortunately, performance suffers as a lock is acquired every time the instance is requested.

Note that instead of locking on typeof(Singleton) as some versions of this implementation do, I lock on the value of a static variable which is private to the class. Locking on objects which other classes can access and lock on (such as the type) risks performance issues and even deadlocks. This is a general style preference of mine - wherever possible, only lock on objects specifically created for the purpose of locking, or which document that they are to be locked on for specific purposes (e.g. for waiting/pulsing a queue). Usually such objects should be private to the class they are used in. This helps to make writing thread-safe applications significantly easier.

Third version - attempted thread-safety using double-check locking

//?Bad?code!?Do?not?use!
public?sealed?class?Singleton
{
????
static?Singleton?instance=null;
????
static?readonly?object?padlock?=?new?object();

????Singleton()
????
{
????}


????
public?static?Singleton?Instance
????
{
????????
get
????????
{
????????????
if?(instance==null)
????????????
{
????????????????
lock?(padlock)
????????????????
{
????????????????????
if?(instance==null)
????????????????????
{
????????????????????????instance?
=?new?Singleton();
????????????????????}

????????????????}

????????????}

????????????
return?instance;
????????}

????}

}


This implementation attempts to be thread-safe without the necessity of taking out a lock every time. Unfortunately, there are four downsides to the pattern:

  • It doesn't work in Java. This may seem an odd thing to comment on, but it's worth knowing if you ever need the singleton pattern in Java, and C# programmers may well also be Java programmers. The Java memory model doesn't ensure that the constructor completes before the reference to the new object is assigned to instance. The Java memory model is going through a reworking for version 1.5, but double-check locking is anticipated to still be broken after this. (Note to self: Java 1.5 has been out for a while - I need to check what the memory model changes are...)
  • Without any memory barriers, it's broken in .NET too. Making the instance variable volatile can make it work, as would explicit memory barrier calls, although in the latter case even experts can't agree exactly which barriers are required. I tend to try to avoid situations where experts don't agree what's right and what's wrong!
  • It's easy to get wrong. The pattern needs to be pretty much exactly as above - any significant changes are likely to impact either performance or correctness.
  • It still doesn't perform as well as the later implementations.

Fourth version - not quite as lazy, but thread-safe without using locks

?
public?sealed?class?Singleton
{
????
static?readonly?Singleton?instance=new?Singleton();

????
//?Explicit?static?constructor?to?tell?C#?compiler//?not?to?mark?type?as?beforefieldinit
????static?Singleton()
????
{
????}


????Singleton()
????
{
????}


????publicstatic?Singleton?Instance
????
{
????????
get
????????
{
????????????
return?instance;
????????}

????}

}


As you can see, this is really is extremely simple - but why is it thread-safe and how lazy is it? Well, static constructors in C# are specified to execute only when an instance of the class is created or a static member is referenced, and to execute only once per AppDomain. Given that this check for the type being newly constructed needs to be executed whatever else happens, it will be faster than adding extra checking as in the previous examples. There are a couple of wrinkles, however:

  • It's not as lazy as the other implementations. In particular, if you have static members other than GetInstance, the first reference to those members will involve creating the instance. This is corrected in the next implementation.
  • There are complications if one static constructor invokes another which invokes the first again. Look in the .NET specifications (currently section 9.5.3 of partition II) for more details about the exact nature of type initializers - they're unlikely to bite you, but it's worth being aware of the consequences of static constructors which refer to each other in a cycle.
  • The laziness of type initializers is only guaranteed by .NET when the type isn't marked with a special flag called beforefieldinit. Unfortunately, the C# compiler (as provided in the .NET 1.1 runtime, at least) marks all types which don't have a static constructor (i.e. a block which looks like a constructor but is marked static) as beforefieldinit. I now have a discussion page with more details about this issue. Also note that it affects performance, as discussed near the bottom of this article.

One shortcut you can take with this implementation (and only this one) is to just make instance a public static readonly variable, and get rid of the property entirely. This makes the basic skeleton code absolutely tiny! Many people, however, prefer to have a property in case further action is needed in future, and JIT inlining is likely to make the performance identical. (Note that the static constructor itself is still required if you require laziness.)

Fifth version - fully lazy instantiation

public?sealed?class?Singleton
{
????Singleton()
????
{
????}


????
public?static?Singleton?Instance
????
{
????????
get
????????
{
????????????
return?Nested.instance;
????????}

????}

????
????
class?Nested
????
{
????????
//?Explicit?static?constructor?to?tell?C#?compiler//?not?to?mark?type?as?beforefieldinit
????????static?Nested()
????????
{
????????}


????????
internal?static?readonly?Singleton?instance?=?new?Singleton();
????}

}


Here, instantiation is triggered by the first reference to the static member of the nested class, which only occurs in GetInstance. This means the implementation is fully lazy, but has all the performance benefits of the previous ones. Note that although nested classes have access to the enclosing class's private members, the reverse is not true, hence the need for instance to be internal here. That doesn't raise any other problems, though, as the class itself is private. The code is a bit more complicated in order to make the instantiation lazy, however.

Performance vs laziness

In many cases, you won't actually require full laziness - unless your class initialization does something particularly time-consuming, or has some side-effect elsewhere, it's probably fine to leave out the explicit static constructor shown above. This can increase performance as it allows the JIT compiler to make a single check (for instance at the start of a method) to ensure that the type has been initialized, and then assume it from then on. If your singleton instance is referenced within a relatively tight loop, this can make a (relatively) significant performance difference. You should decide whether or not fully lazy instantiation is required, and document this decision appropriately within the class. (See below for more on performance, however.)

Exceptions

Sometimes, you need to do work in a singleton constructor which may throw an exception, but might not be fatal to the whole application. Potentially, your application may be able to fix the problem and want to try again. Using type initializers to construct the singleton becomes problematic at this stage. Different runtimes handle this case differently, but I don't know of any which do the desired thing (running the type initializer again), and even if one did, your code would be broken on other runtimes. To avoid these problems, I'd suggest using the second pattern listed on the page - just use a simple lock, and go through the check each time, building the instance in the method/property if it hasn't already been successfully built.

Thanks to Andriy Tereshchenko for raising this issue.

A word on performance

A lot of the reason for this page stemmed from people trying to be clever, and thus coming up with the double-checked locking algorithm. There is an attitude of locking being expensive which is common and misguided. I've written a very quick benchmark which just acquires singleton instances in a loop a billion ways, trying different variants. It's not terribly scientific, because in real life you may want to know how fast it is if each iteration actually involved a call into a method fetching the singleton, etc. However, it does show an important point. On my laptop, the slowest solution (by a factor of about 5) is the locking one (solution 2). Is that important? Probably not, when you bear in mind that it still managed to acquire the singleton a billion times in under 40 seconds. That means that if you're "only" acquiring the singleton four hundred thousand times per second, the cost of the acquisition is going to be 1% of the performance - so improving it isn't going to do a lot. Now, if you are acquiring the singleton that often - isn't it likely you're using it within a loop? If you care that much about improving the performance a little bit, why not declare a local variable outside the loop, acquire the singleton once and then loop. Bingo, even the slowest implementation becomes easily adequate.

I would be very interested to see a real world application where the difference between using simple locking and using one of the faster solutions actually made a significant performance difference.

Conclusion (modified slightly on January 7th 2006)

There are various different ways of implementing the singleton pattern in C#. A reader has written to me detailing a way he has encapsulated the synchronization aspect, which while I acknowledge may be useful in a few very particular situations (specifically where you want very high performance, and the ability to determine whether or not the singleton has been created, and full laziness regardless of other static members being called). I don't personally see that situation coming up often enough to merit going further with on this page, but please mail me if you're in that situation.

My personal preference is for solution 4: the only time I would normally go away from it is if I needed to be able to call other static methods without triggering initialization, or if I needed to know whether or not the singleton has already been instantiated. I don't remember the last time I was in that situation, assuming I even have. In that case, I'd probably go for solution 2, which is still nice and easy to get right.

Solution 5 is elegant, but trickier than 2 or 4, and as I said above, the benefits it provides seem to only be rarely useful.

(I wouldn't use solution 1 because it's broken, and I wouldn't use solution 3 because it has no benefits over 5.)


C#面向對象設計模式縱橫談(2)Singleton 單件(創建型模式) ---Level 300
活動日期: 2005-10-25 14:30 -- 16:00
講:李建忠

________________________________________

Q使用靜態的計數器一樣可以在單線程中實現只實例化一個對象的目的啊

A:這個應該是不能的,因為靜態計數器的作用和if (instance == null) 是一樣的,在多線程環境中都會有問題的。

________________________________________

Q多線成中的lock可以lock(this)?

A:因為是在靜態屬性中,所以不能訪問this指針。

________________________________________

Q為什么雙檢查?

A:單檢查也是可以的,但是單檢查的效率要比雙檢查低——因為同步控制的時間太長了。雙檢查能夠最高效地實現多線程安全的訪問。

________________________________________

Q為什么一定要加readonly關鍵字?

A:這個readonly關鍵字只是不希望客戶程序將Instance字段設置為null等不合理的值。

________________________________________

Qremoting里面的Singleton對象應該是使用了Singleton模式吧

A是的,.NET Remoting中的服務器對象激活中就使用了Singleton模式

________________________________________

Q怎樣獲得類已經構造的實例的個數?

A可以在實例構造器中放一個靜態的字段,來表示計數器——在實例構造器中每次做count++即可。

________________________________________

Q怎樣區分各個模式,學了很久,總是搞不清楚他們之間的區別,經常性的搞混

A:區分模式的最好辦法是搞清楚為什么有這些模式,各個模式分別應對什么樣的變化。

________________________________________

Q當好一個程序員必須要學好設計模式嗎?它在代碼編寫過程中有什么好處?怎樣可以學好設計模式?

A:不一定,我了解的某些天才程序員對設計模式并不感興趣——主要是因為他們首先不是面向對象程序員J但是學好設計模式對于一個面向對象程序員有莫大幫助。學好設計模式的關鍵是深刻理解面向對象。

________________________________________

Qlock 對于singleton本身的類使用使用 helper有什么區別

A:本質上沒什么區別,但是別忘了這時候Singleton對象還沒有創建J所以這時候不可能lock一個Singleton對象。

________________________________________

Q我有一個疑問,在singleton設計模式下,什么時候,由誰來創建這個實例呢?

ASingleton模式中的“緩式加載”已經說明了Singleton的實例是在客戶程序第一次調用GetInstance方法時才會被創建。

________________________________________

?

Q我大致的翻過設計模式這本書,我想請教下您,您認為在設計一個很好的面向對象的軟件與程序語言的選擇(比如C#C++JAVA)二者之間怎么做到最好的搭配

A:我個人認為這三門語言都是很好的面向對象語言,都能很充分地發揮面向對象的力量。在面向對象層次上,它們的差別并不大。

________________________________________

Q在多線程環境中,使用Static實例化一個對象后,那么它的實例的方法是否可以保證執行時不致沖突?

A:實例方法在多線程環境中無所謂沖突,關鍵是實例方法操作的實例數據——如果有的話——有可能沖突。

posted on 2006-01-03 14:58 夢在天涯 閱讀(4011) 評論(15)  編輯 收藏 引用 所屬分類: Design pattern

評論

# re: 模式設計c#--創建型--Singleton 2006-04-20 13:45 夢在天涯

sealed class Singleton
{
private Singleton();
public static readonly Singleton Instance=new Singleton();
}
這使得代碼減少了許多,同時也解決了線程問題帶來的性能上損失。那么它又是怎樣工作的呢?

注意到,Singleton類被聲明為sealed,以此保證它自己不會被繼承,其次沒有了Instance的方法,將原來_instance成員變量變成public readonly,并在聲明時被初始化。通過這些改變,我們確實得到了Singleton的模式,原因是在JIT的處理過程中,如果類中的static屬性被任何方法使用時,.NET Framework將對這個屬性進行初始化,于是在初始化Instance屬性的同時Singleton類實例得以創建和裝載。而私有的構造函數和readonly(只讀)保證了Singleton不會被再次實例化,這正是Singleton設計模式的意圖。  回復  更多評論   

# re: 模式設計c#--創建型--Singleton 2006-04-20 13:46 夢在天涯

在什么情形下使用單例模式:
使用Singleton模式有一個必要條件:在一個系統要求一個類只有一個實例時才應當使用單例模式。反過來,如果一個類可以有幾個實例共存,就不要使用單例模式。

注意:

不要使用單例模式存取全局變量。這違背了單例模式的用意,最好放到對應類的靜態成員中。

不要將數據庫連接做成單例,因為一個系統可能會與數據庫有多個連接,并且在有連接池的情況下,應當盡可能及時釋放連接。Singleton模式由于使用靜態成員存儲類實例,所以可能會造成資源無法及時釋放,帶來問題。  回復  更多評論   

# re: 模式設計c#--創建型--Singleton 2006-04-20 13:46 夢在天涯

單例模式的特點:

單例類只能有一個實例。
單例類必須自己創建自己的唯一實例。
單例類必須給所有其它對象提供這一實例。
單例模式應用:

每臺計算機可以有若干個打印機,但只能有一個Printer Spooler,避免兩個打印作業同時輸出到打印機。
一個具有自動編號主鍵的表可以有多個用戶同時使用,但數據庫中只能有一個地方分配下一個主鍵編號。否則會出現主鍵重復。
  回復  更多評論   

# re: 模式設計c#--創建型--Singleton 2010-02-27 13:35 Patrice20RHODES

It is understandable that money makes us free. But what to do when somebody doesn't have money? The one way is to receive the <a href="http://lowest-rate-loans.com">loans</a> or collateral loan.   回復  更多評論   

# re: 模式設計c#--創建型--Singleton 2010-08-02 02:52 writing for money

Some people must not miss to read referring to this topic. Anybody should determine the Freelance writing job service online.   回復  更多評論   

# re: 模式設計c#--創建型--Singleton 2010-10-07 10:32 loan

That's known that cash makes us autonomous. But what to do when one doesn't have money? The one way only is to receive the home loans and just commercial loan.   回復  更多評論   

# re: 模式設計c#--創建型--Singleton 2013-03-24 23:32 click here

Are you in need of professional CV writing services? Still don’t know which company to choose for buying resume? Click here (resumesleader.com). Here it is possible to view cover letter samples or buy CV from expert resume writers.  回復  更多評論   

# re: 模式設計c#--創建型--Singleton 2013-05-23 04:11 Web page

Go to Perfect-resume company if you need professional CV writing services. After dealing with this dependable writing agency, you will be aware of where to buy resume paper and where to glance over resume templates. Catch the moment, buy resume of superior quality from certified resume writers.  回復  更多評論   

# re: 模式設計c#--創建型--Singleton 2013-05-23 05:37 over here

When it is difficult for you to resolve what agency to reach, talk to your friends who also like to find useful resume writing tips "resumesleader.com".  回復  更多評論   

公告

EMail:itech001#126.com

導航

統計

  • 隨筆 - 461
  • 文章 - 4
  • 評論 - 746
  • 引用 - 0

常用鏈接

隨筆分類

隨筆檔案

收藏夾

Blogs

c#(csharp)

C++(cpp)

Enlish

Forums(bbs)

My self

Often go

Useful Webs

Xml/Uml/html

搜索

  •  

積分與排名

  • 積分 - 1814983
  • 排名 - 5

最新評論

閱讀排行榜

青青草原综合久久大伊人导航_色综合久久天天综合_日日噜噜夜夜狠狠久久丁香五月_热久久这里只有精品
  • <ins id="pjuwb"></ins>
    <blockquote id="pjuwb"><pre id="pjuwb"></pre></blockquote>
      <noscript id="pjuwb"></noscript>
            <sup id="pjuwb"><pre id="pjuwb"></pre></sup>
              <dd id="pjuwb"></dd>
              <abbr id="pjuwb"></abbr>
              免费亚洲电影在线| 中日韩视频在线观看| 欧美视频中文一区二区三区在线观看 | 亚洲精品视频二区| 亚洲图片欧美一区| 国产性猛交xxxx免费看久久| 久久精品青青大伊人av| 久久精品欧美| 午夜在线视频观看日韩17c| 在线观看一区二区精品视频| 欧美日韩国产影院| 免费黄网站欧美| 欧美中文字幕视频| 亚洲一区二区三区三| 欧美一区精品| 一区二区高清在线| 日韩一二三在线视频播| 亚洲蜜桃精久久久久久久| 亚洲第一网站免费视频| 亚洲国产精品成人精品| 亚洲无限乱码一二三四麻| 久久精品在线免费观看| 久久精品亚洲一区二区| 性亚洲最疯狂xxxx高清| 亚洲欧美资源在线| 亚洲一区二区三区高清不卡| 久久精品国产亚洲aⅴ| 性色av香蕉一区二区| 久久另类ts人妖一区二区| 亚洲激情电影在线| 亚洲国产精品999| 女主播福利一区| 亚洲午夜高清视频| 亚洲欧美综合国产精品一区| 亚洲综合不卡| 欧美激情第二页| 欧美日韩免费观看一区| 欧美三日本三级三级在线播放| 欧美影院午夜播放| 欧美日韩国产在线看| 欧美日韩不卡在线| 国产精品久久久免费| 亚洲欧洲在线视频| 亚洲一级在线| 欧美中文字幕在线观看| 亚洲第一二三四五区| 国产亚洲精品久| 日韩亚洲国产精品| 亚洲丝袜av一区| 欧美一级淫片aaaaaaa视频| 久久国产日韩| 亚洲视频在线一区观看| 香蕉久久精品日日躁夜夜躁| 久久久久久久波多野高潮日日| 国产精品国产三级国产普通话三级| 国产精品一区二区黑丝| 狠狠色综合日日| 99视频一区| 亚洲精品国产精品久久清纯直播 | 久久夜精品va视频免费观看| 一本色道久久综合亚洲精品按摩 | 亚洲精品系列| 亚洲第一偷拍| 欧美一区免费视频| 欧美视频成人| 欧美尤物一区| 9久草视频在线视频精品| 欧美综合第一页| 在线观看av一区| 午夜视频精品| 91久久精品日日躁夜夜躁欧美| 欧美韩日亚洲| 欧美成人午夜免费视在线看片| 国产老女人精品毛片久久| 亚洲激情国产精品| 最新国产成人在线观看| 欧美中文字幕在线播放| 欧美亚洲第一页| 国产一区二区欧美日韩| 嫩草影视亚洲| 亚洲欧美日韩精品综合在线观看| 久久日韩精品| 一个色综合av| 欧美激情视频给我| 久久国产精品亚洲va麻豆| 久久网站免费| 激情小说另类小说亚洲欧美| 亚洲一级片在线观看| 欧美一级久久久| 国产精品系列在线| 一区二区三区免费观看| 亚洲欧美日韩精品久久久久| 国产精品激情| 亚洲丝袜av一区| 欧美影片第一页| 久久精品国产综合| 卡通动漫国产精品| 欧美日韩在线精品| 欧美一级一区| 久久久精品五月天| 亚洲夜晚福利在线观看| 欧美激情在线观看| 欧美中文字幕在线播放| 亚洲欧美日产图| 国产精品国产三级国产aⅴ无密码| 久热精品视频在线观看| 欧美色综合天天久久综合精品| 久久一区精品| 国产精品嫩草影院一区二区| 亚洲大片在线观看| 国产精品你懂的| 久久精品夜色噜噜亚洲a∨| 午夜免费在线观看精品视频| 99精品久久久| 制服丝袜亚洲播放| 国产日韩欧美视频在线| 一区二区三区偷拍| 国产精品色在线| 久久精品亚洲一区二区| 欧美日韩综合在线免费观看| 亚洲欧美日韩国产一区二区| 欧美成人免费va影院高清| 美女任你摸久久| 亚洲午夜电影网| 欧美一区二区三区四区高清| 亚洲高清资源| 久久夜色撩人精品| 亚洲欧美资源在线| 久久久综合精品| 在线综合亚洲欧美在线视频| 欧美α欧美αv大片| 亚洲一区区二区| 欧美在线精品一区| 久久精品国产69国产精品亚洲 | 中文一区二区在线观看| 亚洲人体一区| 亚洲一品av免费观看| 揄拍成人国产精品视频| 久久一区二区三区四区| 韩日视频一区| 一区二区91| 精品不卡视频| 久久综合国产精品| 中文在线一区| 欧美手机在线| 欧美成人精品一区二区| 欧美全黄视频| 亚洲麻豆国产自偷在线| 亚洲午夜av| 国产精品亚洲激情| 欧美一区二区黄| 美女免费视频一区| 亚洲精品国产精品乱码不99| 欧美精品福利| 亚洲一区二区四区| 久久久高清一区二区三区| 好吊成人免视频| 欧美激情bt| 亚洲女ⅴideoshd黑人| 久久精品成人| 最新亚洲电影| 亚洲一区二区三区免费观看 | 欧美一级理论片| 老司机67194精品线观看| 在线成人小视频| 欧美日韩国产探花| 亚欧成人在线| 亚洲欧洲一区二区在线观看| 亚洲无玛一区| 韩国一区二区三区在线观看 | 在线日韩日本国产亚洲| 欧美国产精品v| 亚洲免费综合| 欧美激情亚洲自拍| 性久久久久久久| 亚洲欧洲一区二区三区在线观看 | 亚洲欧美另类国产| 欧美丰满高潮xxxx喷水动漫| 亚洲一级在线观看| 亚洲国产专区校园欧美| 国产精品日韩欧美| 免费欧美视频| 欧美一区二区在线免费观看| 亚洲精品一区二区三区在线观看| 久久岛国电影| 亚洲视频综合在线| 亚洲韩国精品一区| 国产一区二区黄色| 欧美性开放视频| 欧美大片第1页| 久久亚裔精品欧美| 欧美一区二区久久久| 99v久久综合狠狠综合久久| 蜜臀av性久久久久蜜臀aⅴ| 欧美亚洲一级| 亚洲欧美在线免费观看| 亚洲午夜国产成人av电影男同| 亚洲欧洲日韩综合二区| 亚洲承认在线| 亚洲第一在线视频|