ALLPlayer

最新版本 OpenSSL 1.1.1l (64-bit)

OpenSSL 1.1.1l (64-bit)

OpenSSL 1.1.1l (64-bit)
ALLPlayer 可能是最流行的與匹配字幕看電影的節目。它播放所有已知的媒體格式,RAR 文件,而且還有一個實現的 LiveUpdate 功能來更新最新的編解碼器,如果打開電影文件時出現問題。該程序還自動搜索所有語言的匹配字幕。智能字幕將字幕保存在屏幕上一段時間,供您閱讀。 AVI Doctor 幫助你下載一個 torrent 文件並且想要預覽電影。與 AVI 醫生,你也可以修復損壞的文件。

最受歡迎的格式,如 DivX,XviD,MP3 和 AVI,FLV,MP4,3GP,MKV,M2TS,MPG,MPEG,RMVB,WMV,QuickTime,MOV,FLAC,APE 等等。 liveupdate 編解碼器下載。其他功能:DVD 支持,CD 支持。從網絡攝像頭,DV 或任何其他視頻源(如電視調諧器)預覽電影的選項。兩個監視器或監視器和電視支持。支持杜比環繞,SPDIF 和 3D 音頻。能夠選擇任何音頻輸出,包括 SPDIF,允許放大器無損的數字音頻傳輸。字幕支持所有已知格式.

ALLPlayer 特點:
免費簡單易用的多媒體播放器免費簡單的視頻編輯器匹配字幕下載內置免費視頻菜單創作免費轉換器內置字幕音頻閱讀器播放任何視頻和音頻格式支持杜比環繞聲,3D 音頻和 SPDIF 視頻封面和電影信息下載最佳 MKV 和 Divx Plus 編碼器在兩個監視器上顯示視頻播放列表和均衡器免費 DivX 字幕 muxer RAR 播放器

ScreenShot

軟體資訊
檔案版本 OpenSSL 1.1.1l (64-bit)

檔案名稱 Win64OpenSSL-1_1_1L.exe
檔案大小
系統 Windows XP / Vista / Windows 7 / Windows 8 / Windows 10
軟體類型 免費軟體
作者 ALLCinema Ltd
官網 http://www.allplayer.org/
更新日期 2021-08-25
更新日誌

What's new in this version:

Fixed an SM2 Decryption Buffer Overflow:
- In order to decrypt SM2 encrypted data an application is expected to call the API function EVP_PKEY_decrypt(). Typically an application will call this function twice. The first time, on entry, the "out" parameter can be NULL and, on exit, the "outlen" parameter is populated with the buffer size required to hold the decrypted plaintext. The application can then allocate a sufficiently sized buffer and call EVP_PKEY_decrypt() again, but this time passing a non-NULL value for the "out" parameter.
- A bug in the implementation of the SM2 decryption code means that the calculation of the buffer size required to hold the plaintext returned by the first call to EVP_PKEY_decrypt() can be smaller than the actual size required by the second call. This can lead to a buffer overflow when EVP_PKEY_decrypt() is called by the application a second time with a buffer that is too small.
- A malicious attacker who is able present SM2 content for decryption to an application could cause attacker chosen data to overflow the buffer by up to a maximum of 62 bytes altering the contents of other data held after the buffer, possibly changing application behaviour or causing the application to crash. The location of the buffer is application dependent but is typically heap allocated.

Fixed various read buffer overruns processing ASN.1 strings:
- ASN.1 strings are represented internally within OpenSSL as an ASN1_STRING structure which contains a buffer holding the string data and a field holding the buffer length. This contrasts with normal C strings which are repesented as a buffer for the string data which is terminated with a NUL (0) byte.
- Although not a strict requirement, ASN.1 strings that are parsed using OpenSSL's own "d2i" functions (and other similar parsing functions) as well as any string whose value has been set with the ASN1_STRING_set() function will additionally NUL terminate the byte array in the ASN1_STRING structure.
- However, it is possible for applications to directly construct valid ASN1_STRING structures which do not NUL terminate the byte array by directly setting the "data" and "length" fields in the ASN1_STRING array. This can also happen by using the ASN1_STRING_set0() function.
- Numerous OpenSSL functions that print ASN.1 data have been found to assume that the ASN1_STRING byte array will be NUL terminated, even though this is not guaranteed for strings that have been directly constructed. Where an application requests an ASN.1 structure to be printed, and where that ASN.1 structure contains ASN1_STRINGs that have been directly constructed by the application without NUL terminating the "data" field, then a read buffer overrun can occur.
- The same thing can also occur during name constraints processing of certificates (for example if a certificate has been directly constructed by the application instead of loading it via the OpenSSL parsing functions, and the certificate contains non NUL terminated ASN1_STRING structures). It can also occur in the X509_get1_email(), X509_REQ_get1_email() and X509_get1_ocsp() functions.
- If a malicious actor can cause an application to directly construct an ASN1_STRING and then process it through one of the affected OpenSSL functions then this issue could be hit. This might result in a crash (causing a Denial of Service attack). It could also result in the disclosure of private memory contents (such as private keys, or sensitive plaintext).

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