#include<bits/stdc++.h>
typedef long long ll;
const ll MO = 1000000007;
int T,bin[63],lens;
ll n,ans,power[63],pre[63],nxt[63];
ll read(){ll x;scanf("%lld",&x);return x;}
int main()
{
scanf("%d",&T), power[0] = 1;
for (int i=1; i<=61; i++) power[i] = (power[i-1]<<1)%MO;
for(int cas=1;cas<=T;cas++)
{
n = read(), ans = lens = 0;
for (ll x=n; x; x>>=1) bin[++lens] = x&1;
pre[0] = nxt[lens+1] = 0;
for (int i=1; i<=lens; i++) pre[i] = (pre[i-1]+power[i-1]*bin[i])%MO;
for (int i=lens; i>=1; i--) nxt[i] = ((nxt[i+1]<<1)+bin[i])%MO;
for (int i=1; i<=lens; i++)
{
if (bin[i]) pre[i-1]++,ans = (ans+pre[i-1])%MO;
ans = (ans+nxt[i+1]*power[i-1]%MO)%MO;
}
// ans为1到n中i的二进制1的个数
//std::cout<<ans<<'\n';continue;
ans = (n+1ll)%MO*ans%MO;
for (int i=1; i<=lens; i++)
{
if (bin[i]) ans = (ans+MO-pre[i-1]*pre[i-1]%MO)%MO;
ans = (ans-nxt[i+1]*power[i-1]%MO*power[i-1]%MO+MO)%MO;
}
// ans-[i,j]前缀1的个数
printf("Case #%d: %lld\n",cas,ans);
}
return 0;
}
// for(ll i=1;i<=n;i<<=1,++len)
// if(n&i)ans+=n%i+1+(n>>len+1)<<len;
// else ans+=(n>>len+1)<<len;
// i属于 [1,n]内i 的二进制下1的个数 总合
免责声明:本站发布的内容(图片、视频和文字)以原创、转载和分享为主,文章观点不代表本网站立场,如果涉及侵权请联系站长邮箱:is@yisu.com进行举报,并提供相关证据,一经查实,将立刻删除涉嫌侵权内容。