如何在过滤器方法中返回与&&在回调函数中加入的布尔值?
我正在寻找一种生成布尔值的优雅方法,该布尔值最终将在过滤器方法的回调函数内使用&&运算符加入。
我试图遍历过滤条件,但是找不到将每个迭代结果合并为以下格式的方法:
return Boolean && Boolean && Boolean && Boolean && Boolean
因为+ = &&布尔无效。
这是我所拥有的并且正在起作用:
//data I am filtering
this.preSearch = [
["The Lord of the Rings", "J. R. R. Tolkien", "English", "1955", "150 milionów"],
["Le Petit Prince (The Little Prince)", "Antoine de Saint-Exupéry", "French", "1943", "140 milionów"],
["Harry Potter and the Philosopher's Stone", "J. K. Rowling", "English", "1997", "120 milionów"],
["The Hobbit", "J. R. R. Tolkien", "English", "1937", "100 milionów"],
["And Then There Were None", "Agatha Christie", "English", "1939", "100 milionów"],
["Dream of the Red Chamber", "Cao Xueqin", "Chinese", "1791", "100 milionów"]
]
//filters, that are set dynamically but let's pretend they are equal to
var filters = ["", "", "english", "19", "1"]
var searchdata = this.preSearch.filter(row => {
return
row[0].toLowerCase().indexOf(filters[0].toLowerCase()) > -1
&& row[1].toLowerCase().indexOf(filters[1].toLowerCase()) > -1
&& row[2].toLowerCase().indexOf(filters[2].toLowerCase()) > -1
&& row[3].toLowerCase().indexOf(filters[3].toLowerCase()) > -1
&& row[4].toLowerCase().indexOf(filters[4].toLowerCase()) > -1
})
我需要可扩展且更优雅的解决方案,因此,如果我增强了过滤后的数组,则无需添加&&。
犯罪嫌疑人X2回答
-
小怪兽爱吃肉
您可以通过应用Array.every()并String.includes()像这样来做到这一点:var searchdata = this.preSearch.filter(row => { // this only returns true if our condition works for // index = 0, 1, 2, 3, 4 return [0, 1, 2, 3, 4].every(index => { const rowContent = row[index].toLowerCase(); const filterContent = filters[index].toLowerCase(); // String.includes() is nicer than String.indexOf() here because // you don't need the ugly -1 return rowContent.includes(filterContent); });});
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JavaScript