南韓《星海爭霸II》GSL第一季CodeS的八強賽今(27)晚即將開打,首日將上演Bunny VS Dark及Classic VS Rogue等2場對決。從過往紀錄來看,本次CodeS是Rogue生涯第7次打進CodeS八強,然而先前6次比賽歷史中他從未進入四強,今天他將再度挑戰個人GSL排名紀錄。而人族選手Bunny則是生涯第一次晉級八強,他將挑戰經驗老到的南韓頂級蟲族「何輸非」Dark,希望能晉級四強賽。
在經過2個月的漫長賽程後,今晚GSL終於要迎來第一季的CodeS八強賽,本次CodeS三族八強選手人數平均,今晚將進行8強賽的前兩場賽事,將上演Bunny VS Dark及Classic VS Rogue的對決,爭取晉級四強的機會。
The second match is Classic vs Rogue.
— Code S Facts (@CodeSFacts) 2019年3月26日
Rogue has played in the Ro8 seven times before, yet he has been eliminated every single time, four of which have been in the past five seasons.
As for Classic, he is 2-1 in matches in the Ro8 within the past two years. pic.twitter.com/f910bWEayO
根據「Code S Facts」推特帳戶資料,今晚將是Rogue生涯第7次挑戰四強晉級資格,他先前6次八強賽都遭到淘汰,其中4次更是發生在最近5季GSL賽季內,一方面證明了Rogue近年來實力的提升,另一方面Rogue卻又遲遲無法跨越這道障礙,今晚他將對決神族Classic爭奪四強資格。而另一場對戰中,人族選手Bunny則是生涯首次晉級八強,能否繼續創造個人排名新高,就得看Bunny能否過實力雄厚的Dark這關。
The first of two quarterfinals to be played tonight: Bunny vs Dark.
— Code S Facts (@CodeSFacts) 2019年3月26日
This is the first Ro8 of Bunny's Code S career. For Dark, winning the match tonight will give him his third Ro4 appearance in the past 5 seasons. pic.twitter.com/mb9bw3nSZW
從數據網站Aligulac的對戰紀錄上來看,Dark與Bunny的對戰上Dark以9勝2負佔據絕對優勢,Bunny上一次打敗Dark,得追溯到2017年。而Rogue與Classic的對戰紀錄上則是Rogue 9勝12負,但自2018年以來Rogue在雙方的6次對戰中贏下了4場。