-1

I need to turn some sentences into arrays to render parse trees.

At beginning, I have sentences that already tagged.

Tagged Sentence:

(S (NP (PRP You)) (VP (VBP are) (ADJP (JJ riight))) (. .))

Then I numbered the sentences.

When numbered, It looks like this:

(1-S (2-NP (3-PRP 4-You)) (5-VP (6-VBP 7-are) (8-ADJP (9-JJ 10-right))) (11-. 12-.))

However, I need to turn it into an Array. By using Regular expression, It's easy to turn the numbered sentence into something likes this to represent an array:

var DataArray = [
{ key: 1, text: "S"}, 
{ key: 2, text: "NP",  parent: "?" }, 
{ key: 3, text: "PRP",  parent: "?" }, 
{ key: 4, text: "You",  parent: "?" },  
{ key: 5, text: "VP",  parent: "?" },  
{ key: 6, text: "VBP",  parent: "?" },    
{ key: 7, text: "are",  parent: "?" },    
{ key: 8, text: "ADJP",  parent: "?" },  
{ key: 9, text: "JJ",  parent: "?" }, 
{ key: 10, text: "right",  parent: "?" }, 
{ key: 11, text: ".",  parent: "?" }, 
{ key: 12, text: ".",  parent: "?" } ]

The tricky part is how to dynamically find each key's parent key number. I guess it has something to do with parentheses matching.

The Array I wanted looks like this:

var DataArray = [
{ key: 1, text: "S"},   
{ key: 2, text: "NP",  parent: "1" }, 
{ key: 3, text: "PRP",  parent: "2" }, 
{ key: 4, text: "You",  parent: "3" }, 
{ key: 5, text: "VP",  parent: "1" },  
{ key: 6, text: "VBP",  parent: "5" }, 
{ key: 7, text: "are",  parent: "6" }, 
{ key: 8, text: "ADJP",  parent: "5" },   
{ key: 9, text: "JJ",  parent: "8" },   
{ key: 10, text: "right",  parent: "9" },     
{ key: 11, text: ".",  parent: "1" },     
{ key: 12, text: ".",  parent: "11" } ]   

It's basically the text version of a syntax tree: With each child key matched to it's parent key.

The visual represention tation of the above data array

0

You could write code yourself its very easy

1) Use any loop (while or for)

2) Iterate over string

3) Set an openBrackets count to 0 opnBr=0 and initialize array

4) Reading the characters at the respective positions, and increment opnBr when you see an opening bracket and decrement it when you see a closing bracket and continue the loop for next iteration.

5)if its character (apart from bracket) check if that key(opnBr) is already present then update else add parent = opnBr-1 and key = opnBr;

Thats it.

Happy Coding :)

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.