我正在尝试编写一个C ++函数,告诉用户他们当前使用的Windows操作系统是否被激活。
我发现了一个类似的问题Programmatically check if Windows 7 is activated,但这个答案需要一个UID参数。我不希望用户必须输入任何参数。
如何以编程方式检查Windows是否已使用C ++激活?
答案 0 :(得分:3)
#define _WIN32_WINNT 0x600
#include <iostream>
#include <windows.h>
#include <slpublic.h>
/*'
From: C:/Windows/System32/SLMGR.vbs
' Copyright (c) Microsoft Corporation. All rights reserved.
'
' Windows Software Licensing Management Tool.
'
' Script Name: slmgr.vbs
'
' WMI class names
private const ServiceClass = "SoftwareLicensingService"
private const ProductClass = "SoftwareLicensingProduct"
private const TkaLicenseClass = "SoftwareLicensingTokenActivationLicense"
private const WindowsAppId = "55c92734-d682-4d71-983e-d6ec3f16059f"
*/
/** Use the WindowsAppId above to check if Windows OS itself is Genuine. **/
bool isGenuineWindows()
{
//WindowsAppId
unsigned char uuid_bytes[] = {0x35, 0x35, 0x63, 0x39, 0x32, 0x37, 0x33, 0x34, 0x2d, 0x64, 0x36,
0x38, 0x32, 0x2d, 0x34, 0x64, 0x37, 0x31, 0x2d, 0x39, 0x38, 0x33,
0x65, 0x2d, 0x64, 0x36, 0x65, 0x63, 0x33, 0x66, 0x31, 0x36, 0x30,
0x35, 0x39, 0x66};
GUID uuid;
SL_GENUINE_STATE state;
UuidFromStringA(uuid_bytes, &uuid);
SLIsGenuineLocal(&uuid, &state, nullptr);
return state == SL_GEN_STATE_IS_GENUINE;
}
int main()
{
std::cout<<isGenuineWindows();
return 0;
}
链接:librpcrt4.a和libslwga.a
答案 1 :(得分:0)
出于某种原因,接受的答案对我来说失败了。它总是返回false。我将保留下面的代码以备将来使用。从 Windows-Vista 开始,它对我有用,现在是 Windows-10 版本 20H2。
#define _WIN32_WINNT 0x600
#include <iostream>
#include <windows.h>
#include <slpublic.h>
#include <tchar.h>
#pragma comment(lib, "Slwga.lib")
#pragma comment(lib, "Rpcrt4.lib")
using std::cout;
using std::endl;
bool isGenuineWindows()
{
GUID uid;
RPC_WSTR rpc = (RPC_WSTR)_T("55c92734-d682-4d71-983e-d6ec3f16059f");
UuidFromString(rpc, &uid);
SL_GENUINE_STATE state;
SLIsGenuineLocal(&uid, &state, NULL);
return state == SL_GEN_STATE_IS_GENUINE;
}
int main()
{
if (isGenuineWindows()) {
cout << "Licensed" << endl;
}
else {
cout << "Unlicensed" << endl;
}
return 0;
}